what causes a sodium atom to be larger than a lithium atom?

Answers

Answer 1

Sodium has a larger atomic number and smaller atomic size than lithium. The atomic size of an element is determined by the distance between the outermost electrons (valence electrons) and the nucleus.

This distance is influenced by two main factors: the number of energy levels in the atom and the effective nuclear charge experienced by the valence electrons.

In the case of sodium and lithium, both have the same number of energy levels, but sodium has one more proton in its nucleus than lithium, resulting in a greater positive charge.

This increases the attractive force between the nucleus and valence electrons, pulling them closer to the nucleus and making the sodium atom smaller than the lithium atom.

Therefore, sodium has a larger atomic number and smaller atomic size than lithium.

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Related Questions

If 0. 1 M steam reacts with solid carbon, what are the concentrations of all substances at equilibrium. The K for this reaction is 0. 16

Answers

In the given chemical reaction, H₂O (g) + C (s) ⇌ CO (g) + H₂ (g), if 0.1 M steam reacts with solid carbon, the equilibrium concentrations of H₂O, CO and H₂ are 0.058 M, 0.042 M and 0.042 M, respectively. The K for this reaction is 0.16.

Given,

Concentration of steam (H₂O) = 0.1 M

K = 0.16

The chemical reaction is given by: H₂O (g) + C (s) ⇌ CO (g) + H₂ (g
)We can write the equilibrium constant expression as:
Kc= [CO] [H₂] / [H₂O]

The balanced chemical equation of the reaction can be used to create an ICE table to determine the concentrations at equilibrium. The initial concentration of H₂O is 0.1M and the initial concentration of carbon is 1.0M. At equilibrium, the concentration of CO and H₂ are x M. Therefore, the concentrations at equilibrium are given below:

The answer is:   H₂O(g) + C(s) ⇌ CO(g) + H₂(g)
Initial concentration (M)0.1
Change in concentration (M)–x  –x+ x  + x

Equilibrium concentration (M)0.1–x   1–x + x  x

We can substitute the equilibrium concentrations of all the species in the equilibrium constant expression to obtain:
Kc = [CO] [H₂] / [H₂O]
Kc = x * x / (0.1 – x)
Kc = 0.16x2

Kc = 0.016 – 0.16x0.16x + 0.016

Kc = 0

Therefore, x ≈ 0.042 M

The equilibrium concentration of H₂O is 0.1 – 0.042 = 0.058 M
The equilibrium concentration of CO is 0.042 M
The equilibrium concentration of H₂ is 0.042 M.

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1. Zn+S → ZnS How many grams of ZnS will be produced by the complete reaction of 16. 0L of


S?

Answers

To determine the mass of ZnS produced in the reaction between Zn and S, we need to use stoichiometry and convert the given volume of S to mass of ZnS.

First, we need to determine the number of moles of S. To do this, we use the ideal gas law equation:

PV = nRT

Where P is the pressure, V is the volume, n is the number of moles, R is the gas constant, and T is the temperature.

Since we are dealing with a stoichiometric equation, the volume ratio in the balanced equation is 1:1 for S and ZnS. Therefore, the number of moles of S will be equal to the number of moles of ZnS formed.

Given the molar volume of an ideal gas at standard temperature and pressure (STP) is 22.4 L/mol, we can calculate the number of moles of S:

n(S) = V(S) / V(molar) = 16.0 L / 22.4 L/mol = 0.714 mol

Since the molar ratio between S and ZnS is 1:1, the number of moles of ZnS formed will also be 0.714 mol.

Next, we need to calculate the molar mass of ZnS. The molar mass of Zn is 65.38 g/mol, and the molar mass of S is 32.07 g/mol. Therefore, the molar mass of ZnS is:

Molar mass of ZnS = Molar mass of Zn + Molar mass of S

Molar mass of ZnS = 65.38 g/mol + 32.07 g/mol = 97.45 g/mol

Finally, we can calculate the mass of ZnS formed:

Mass of ZnS = Moles of ZnS × Molar mass of ZnS

Mass of ZnS = 0.714 mol × 97.45 g/mol ≈ 69.6 g

Therefore, approximately 69.6 grams of ZnS will be produced by the complete reaction of 16.0 liters of S.

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Identify the C4H9Cl isomer given the following proton NMR data: doublet ? 1.04 (6H) multiplet ? 1.95 (1H) doublet ? 3.35 (2H) A) (CH3)3CCl B) CH3CH2CH2CH2Cl C) CH3CH2CHClCH3 D) (CH3)2CHCH2Cl

Answers

The proton NMR measurements reveal that the C4H9Cl isomer is option C) CH3CH2CHClCH3.

The three corresponding methyl (CH3) protons in this isomer are represented by the doublet at 1.04 ppm with a 6H integration. The proton next to the chlorine atom, which is close to a CH2 group and manifests as a multiplet, is the one at 1.95 ppm with an integration of 1H. The two protons on the CH2 group next to the methyl group, which is next to the carbon atom bearing the chlorine atom, correspond to the doublet at 3.35 ppm with a 2H integration. The proton NMR measurements match the anticipated chemical shifts and integration values for this isomer, which is compatible with the structure of CH3CH2CHClCH3, in which the chlorine atom is on the third carbon atom from the left.

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The proton NMR measurements reveal that the C4H9Cl isomer is option C) CH3CH2CHClCH3.

The three corresponding methyl (CH3) protons in this isomer are represented by the doublet at 1.04 ppm with a 6H integration. The proton next to the chlorine atom, which is close to a CH2 group and manifests as a multiplet, is the one at 1.95 ppm with an integration of 1H. The two protons on the CH2 group next to the methyl group, which is next to the carbon atom bearing the chlorine atom, correspond to the doublet at 3.35 ppm with a 2H integration. The proton NMR measurements match the anticipated chemical shifts and integration values for this isomer, which is compatible with the structure of CH3CH2CHClCH3, in which the chlorine atom is on the third carbon atom from the left.

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what is 13-ethyl-3-methoxy-gona-2 5(10)-diene-17-one

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13-ethyl-3-methoxy-gona-2 5(10)-diene-17-one is Methoxydienone. An anabolic steroid is a type of chemical called methylstenbolone. It is turned into testosterone and other hormones by the body.

There is no good scientific evidence to support the use of methandienone for weight loss, improving athletic performance, level of testosterone, or any number of other purposes. Infertility, behavioral changes, hair loss, and breast development (in men) are some of the side effects. Methoxydienone can likewise prompt liver harm and coronary illness

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how are electronegativity values used to predict the primary character of bonds? rank the following bonds in order of polarity: c-h, c-o, c-n

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Electronegativity values are a measure of an atom's ability to attract electrons towards itself when it forms a chemical bond. When two atoms with different electronegativities form a bond, the atom with the higher electronegativity will attract the shared electrons towards itself more strongly, resulting in a polar bond.

The primary character of a bond refers to whether it is polar or nonpolar. If the difference in electronegativity values between the two atoms is less than 0.5, the bond is considered nonpolar. If the difference is between 0.5 and 1.7, the bond is considered polar covalent. If the difference is greater than 1.7, the bond is considered ionic.
Ranking the following bonds in order of polarity, we start by comparing the electronegativities of the two atoms in each bond. Carbon has an electronegativity of 2.55, hydrogen has 2.20, oxygen has 3.44, and nitrogen has 3.04. Therefore, the order of polarity from least to greatest is: C-H, C-N, C-O. C-H has the smallest electronegativity difference, so it is a nonpolar bond. C-N and C-O have larger electronegativity differences, making them polar covalent bonds.

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How do you balance this redox reaction using the oxidation number method? Fe2+(aq) + MnO4–(aq) --> Fe3+(aq) + Mn2+(aq)

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To balance a redox reaction using the oxidation number method, we need to identify the oxidation numbers of each element, determine which element is being oxidized and which is being reduced, and add or remove electrons as necessary to balance the equation.

Fe has an oxidation number of +2 in Fe2+ and +3 in Fe3+, while Mn has an oxidation number of +7 in MnO4- and +2 in Mn2+.

We then identify which element is being oxidized and which is being reduced. In this case, Fe is being oxidized and Mn is being reduced.

To balance the reaction, we add electrons to the side being oxidized and remove electrons from the side being reduced. After balancing the electrons, we balance the charges and atoms to get the balanced equation: 5Fe2+ + MnO4- + 8H+ --> 5Fe3+ + Mn2+ + 4H2O.

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The balanced redox equation is:

Assign oxidation numbers: Fe₂+ + MnO₄- --> Fe₃+ + Mn₂+

Identify the elements undergoing changes: Fe and Mn

Balance the equation by adding electrons and multiplying to ensure that the electrons are equal on both sides: 5 Fe₂+(aq) + MnO₄–(aq) + 8 H+(aq) → 5 Fe₃+(aq) + Mn₂+(aq) + 4 H₂O(l)

To balance this redox reaction using the oxidation number method, we need to first identify the oxidation states of each element in the reactants and products:

Fe₂+(aq) + MnO₄–(aq) → Fe₃+(aq) + Mn₂+(aq)

Fe is being oxidized from a +2 oxidation state to a +3 oxidation state, while Mn is being reduced from a +7 oxidation state to a +2 oxidation state.

Next, we need to balance the number of electrons lost and gained by each element. Since Fe is losing one electron and Mn is gaining five electrons, we need to multiply the Fe half-reaction by 5 and the Mn half-state.

Next, we need to balance the number of electrons lost and gained by reaction by 1 to balance the electrons:

5 Fe₂+(aq) → 5 Fe₃+(aq) + 5 e-

MnO₄–(aq) + 5 e- + 8 H+(aq) → Mn₂+(aq) + 4 H₂O(l)

Now we can combine these half-reactions, making sure to cancel out the electrons on both sides:

5 Fe₂ (aq) + MnO₄–(aq) + 8 H+(aq) → 5 Fe₃+(aq) + Mn₂+(aq) + 4 H₂O(l)

Finally, we need to balance the charges by adding 5 electrons to the left side:

5 Fe₂+(aq) + MnO₄–(aq) + 8 H+(aq) + 5 e- → 5 Fe₃+(aq) + Mn₂+(aq) + 4 H₂O(l)

The balanced redox equation is:

5 Fe₂+(aq) + MnO₄–(aq) + 8 H+(aq) → 5 Fe₃+(aq) + Mn₂+(aq) + 4 H₂O(l)

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A quantity of COCO gas occupies a volume of 0.68 LL at 1.2 atm and 286 KK . The pressure of the gas is lowered and its temperature is raised until its volume is 3.0 L. Find the density of the COCO under the new conditions. Express your answer to two significant figures and include the appropriate units.

Answers

To find the density of COCO gas under new conditions, follow these steps:


1. Apply the initial conditions (P1, V1, T1) = (1.2 atm, 0.68 L, 286 K).
2. Apply the final conditions (V2, T2) = (3.0 L, T2), but we need to find P2 and T2.
3. Use the Combined Gas Law: P1V1/T1 = P2V2/T2, and rearrange it as P2 = P1V1T2/(V2T1).
4. The problem states that the pressure is lowered, so we'll assume P2 < P1.
5. As the temperature is raised, let's assume T2 > T1. We'll keep P2 and T2 as variables.
6. Use the density formula: density = mass/volume (ρ = m/V), where we need to find mass (m) first.
7. To find mass, use the Ideal Gas Law: PV = nRT, where n = moles, R = gas constant (0.0821 L atm/mol K).
8. Calculate n = P1V1/(RT1), which gives the number of moles (n) for COCO gas.
9. Multiply n by the molar mass of COCO to get the mass (m).
10. Calculate density using the formula: ρ = m/V2.

Follow these steps, and you'll find the density of COCO under the new conditions, expressed in two significant figures with appropriate units.

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The ideal gas law, which connects a gas's pressure, volume, and temperature to both its number of moles and the universal gas constant, can be used to address this issue:

PV = nRT

The ideal gas law, which connects a gas's pressure, volume, and temperature to both its number of moles and the universal gas constant, can be used to address this issue:

PV = nRT

where R is the universal gas constant, n is the number of moles, P is pressure, V is volume, and T is temperature in Kelvin.

The gas is introduced to us in its original state, which consists of a volume of 0.68 L, a pressure of 1.2 atm, and a temperature of 286 K. The amount of moles of COCO gas in the initial state may be calculated using the ideal gas law:

n = PV/RT = [(0.08206 Latm/(mol)] (286 K) / [(1.2 atm) (0.68 L)] = 0.0313 mol

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select reagents from the table to prepare 1-hexanamine from the following starting materials

Answers

1) For [tex]NH_{3}[/tex]  the reagent is NaOH.

2) For [tex]H_{3}O + HBr[/tex] the reagent is  1-bromohexane

3) For [tex](CH_{3} )^{2} SK + N^{3-}[/tex] the reagent is [tex]LiAlH_{4}[/tex]

4) For [tex]SOCl_{2}[/tex]  the reagent is  [tex]LiAlH_{4}[/tex]

5) For [tex]KCN/H_{2} O[/tex] the reagent is Pd/C and [tex]NH_{3}[/tex]

6) For [tex]H_{2} O_{2} CH_{3} l_{(excess)}[/tex], [tex]K_{2} CO_{3}[/tex] the reagent is  [tex]LiAlH_{4}[/tex]

7) For PCC the reagent is  [tex]LiAlH_{4}[/tex]

8) For [tex]NaBH_{3}CN[/tex]  the reagent is [tex]BH_{2}[/tex] and THF

9) For [tex]H_{2} O_{2}/NaOH[/tex]  the reagent is NaOH.

[tex]NH_{3}[/tex] React with 1-bromohexane using NaOH to obtain 1-hexanamine. [tex]H_{3}O + HBr[/tex] React with 1-bromohexane to obtain 1-hexanamine. [tex](CH_{3} )^{2} SK + N^{3-}[/tex] React with 1-bromohexane to obtain N-ethyl-1-hexanamine. Then, react N-ethyl-1-hexanamine with [tex]LiAlH_{4}[/tex] to obtain 1-hexanamine. [tex]SOCl_{2}[/tex]  React with 1-hexanol to obtain 1-bromohexane. Then, react 1-bromohexane with  [tex]LiAlH_{4}[/tex] to obtain 1-hexanamine. [tex]H_{2} O_{2} CH_{3} l_{(excess)}[/tex] React with 1-bromohexane to obtain 1-hexene. Then, react 1-hexene with [tex]Ag_{2}O[/tex] and [tex]H_{2} O[/tex] to obtain 1-hexanol. Finally, react 1-hexanol with [tex]LiAlH_{4}[/tex] to obtain 1-hexanamine.PCC React with 1-hexanol to obtain 1-hexanal. Then, react 1-hexanal with  PBr and  DIBALH to obtain 1-bromohexane. Finally, react 1-bromohexane with  [tex]LiAlH_{4}[/tex] to obtain 1-hexanamine. [tex]KCN/H_{2} O[/tex] React with 1-bromohexane to obtain 1-hexanenitrile. Then, reduce 1-hexanenitrile to 1-hexanamine using Pd/C  and  [tex]NH_{3}[/tex] [tex]NaBH_{3}CN[/tex] React with 1-bromohexane to obtain N-ethyl-1-hexanamine. Then, react N-ethyl-1-hexanamine with Mg/ether and ethylene oxide to obtain N-ethyl-1-hexanol. Finally, react N-ethyl-1-hexanol with [tex]BH_{2}[/tex] and THF to obtain 1-hexanamine. [tex]H_{2} O_{2}/NaOH[/tex] React with 1-hexene to obtain 1-hexane-1,2-diol. Then, react 1-hexane-1,2-diol with NaOH to obtain 1-hexanamine.

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The complete question is:

select reagents from the table to prepare 1-hexanamine from the following starting materials.NH3CO2,thenH3O+HBr1.O32.(CH3)2SK+N−3SOClHBr,H2O2CH3l(excess),K2CO3;thenAg2O,H2O,ΔLiAlH4,thenH2OPCCPBr3DIBALH;thenH3OKCNH2,Pd/C|NH3,NaBH3CNMg/etherethyleneoxideBH2,THF;thenH2O2,NaOH

Which equation is an example of a redox reaction?


A. HCI + KOH — KCl + H20


B. BaCl2 + Na2S04 - 2NaCl + BaSO4


C. Ca(OH)2 + H2SO3 → 2H20 + CaSO3


D. 2K + CaBr2 — 2KBr + Ca

Answers

The equation that is an example of a redox reaction is option B, BaCl2 + Na2SO4 - 2NaCl + BaSO4.

In a redox reaction, both oxidation and reduction occur. In option B, BaCl2 loses electrons and is oxidized to BaSO4 while Na2SO4 gains electrons and is reduced to NaCl.

This exchange of electrons is what makes it a redox reaction. Option A is a neutralization reaction, option C is a double displacement reaction, and option D is an exchange reaction. Therefore, option B is the only equation that fits the criteria for a redox reaction.

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Consider the titration of a 60.0 mL of 0.281 M weak acid HA (Ka = 4.2 x 10) with 0.400 M KOH. What is the pH before any base has been added? 0 of 1 point earned 1 attempt remaining X b After 30.0 mL of KOH have been added, identify the primary species left in the solution. 1 of 1 point earned > After 30.0 mL of KOH have been added, what would the pH of the solution be? 0 of 1 point earned 4 attempts remaining d > After 75.0 mL of KOH have been added, identify the primary species left in the solution 0 of 1 point earned dottompts remaining After 75,0 mL of KOH have been added, what would the pH of the solution be? 0 of 1 point earned 4 attempts remaining

Answers

After 30.0 mL of KOH have been added, the pH of the solution is approximately 0.830.

To determine the pH before any base has been added, we need to consider the dissociation of the weak acid HA.

Volume of weak acid HA = 60.0 mL = 0.0600 L

Concentration of weak acid HA = 0.281 M

Since the weak acid HA is a monoprotic acid, it will dissociate as follows:

HA ⇌ H+ + A-

Since the concentration of HA is 0.281 M and the volume is 0.0600 L, we can calculate the initial concentration of H+ ions using the equation: [H+] = [HA].

Therefore, the initial concentration of H+ ions is 0.281 M.

To find the pH, we can use the equation: pH = -log[H+].

Taking the logarithm of 0.281 gives us:

pH = -log(0.281)

pH = 0.550

So, before any base has been added, the pH of the solution is approximately 0.550.

After 30.0 mL of KOH have been added, the primary species left in the solution will be the conjugate base A- (from the dissociation of HA) and the excess OH- ions from the KOH.

To calculate the pH after 30.0 mL of KOH have been added, we need to determine the amount of excess OH- ions and calculate the new concentration of H+ ions.

Given:

Volume of KOH added = 30.0 mL = 0.0300 L

Concentration of KOH = 0.400 M

Since KOH is a strong base, it will completely dissociate to form OH- ions.

The moles of OH- ions added can be calculated as follows:

moles of OH- = concentration of KOH × volume of KOH added

moles of OH- = 0.400 M × 0.0300 L

moles of OH- = 0.0120 mol

Since the weak acid HA and OH- ions react in a 1:1 ratio, the moles of H+ ions neutralized by OH- ions are also 0.0120 mol.

To find the new concentration of H+ ions, we subtract the moles of H+ ions neutralized from the initial concentration:

[H+] = [HA] - moles of H+ neutralized / total volume

The total volume is the sum of the volumes of the weak acid HA and KOH added:

Total volume = Volume of HA + Volume of KOH added

Total volume = 0.0600 L + 0.0300 L

Total volume = 0.0900 L

[H+] = 0.281 M - 0.0120 mol / 0.0900 L

[H+] = 0.281 M - 0.133 M

[H+] = 0.148 M

Finally, we can calculate the pH using the equation: pH = -log[H+]:

pH = -log(0.148)

pH ≈ 0.830

So, after 30.0 mL of KOH have been added, the pH of the solution is approximately 0.830.

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a pure sample of kclo3 is found to contain 71 grams of chlorine atoms. what is the mass of the sample

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Main Answer: The mass of the sample of KCLO3 is 167 grams.

Supporting Answer: The molar mass of KCLO3 is 122.55 g/mol. The formula of KCLO3 shows that there is one chlorine atom per molecule of KCLO3. Therefore, the number of moles of chlorine atoms in the sample can be calculated by dividing the given mass of chlorine atoms (71 g) by the molar mass of chlorine (35.45 g/mol). This gives:

Number of moles of Cl = 71 g / 35.45 g/mol = 2.00 moles of Cl

Since there is one mole of chlorine atoms in one mole of KCLO3, the number of moles of KCLO3 in the sample is also 2.00 moles. The mass of the sample can be calculated by multiplying the number of moles by the molar mass of KCLO3:

Mass of sample = 2.00 moles × 122.55 g/mol = 245.1 grams ≈ 167 grams (rounded to the nearest whole number)

Therefore, the mass of the sample of KCLO3 is approximately 167 grams.

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give the ground state complete electron configuration for the ion of ba

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The ground state electronic configuration for Ba is [Xe]6s²

The electronic configuration is given to each and every element of the periodic table and with the help of this configuration by counting the number of electrons in the series we can predict the position of the element in the periodic table in ground state.

Every element of periodic table have his own electronic configuration

but for exited state it can change on the basis of removal of electrons.

Therefore, the electronic configuration of barium, which is represented by Ba and has atomic number 56 at ground state will be [Xe]6s² .

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A 3. 5g of element M is reacted with nitrogen to produce 43. 5g of compound M3N2 what is the molar mass of the element

Answers

The molar mass of element M is approximately 5.17 g/mol which can be calculated by comparing the masses of the element and the compound formed in a chemical reaction.

To determine the molar mass of element M, we need to compare the masses of the element and the compound formed. The given data states that 3.5g of element M reacts with nitrogen to produce 43.5g of compound M3N2.

The molar mass of a compound is the sum of the molar masses of its constituent elements. The compound [tex]M_3N_2[/tex] consists of three atoms of element M and two atoms of nitrogen. We can assume the molar mass of nitrogen as approximately 14 g/mol, based on the periodic table.

From the given data, we can calculate the molar mass of compound [tex]M_3N_2[/tex] as follows:

Molar mass of [tex]M_3N_2[/tex] = (3 * Molar mass of M) + (2 * Molar mass of N)

43.5 g/mol = (3 * Molar mass of M) + (2 * 14 g/mol)

Solving the equation, we find:

Molar mass of M = (43.5 g/mol - 28 g/mol) / 3

Therefore, the molar mass of element M is approximately 5.17 g/mol.

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A bottler of drinking water fills plastic bottles with a mean volume of 999 milliliters (ml) and standard deviation 4ml. The fill


volumes are normally distributed. What is the probability that a bottle has a volume greater than 994 mL?


1. 0000


0. 8810


0. 8413


0. 9987

Answers

The probability that a bottle of drinking water has a volume greater than 994 mL can be determined using the normal distribution, given the mean volume of 999 mL and a standard deviation of 4 mL.

The probability that a bottle has a volume greater than 994 mL is approximately 0.8413.

To calculate the probability, we need to find the area under the normal distribution curve to the right of the value 994 mL. This represents the probability of obtaining a volume greater than 994 mL.

Using the properties of the normal distribution, we can standardize the value of 994 mL by subtracting the mean (999 mL) and dividing by the standard deviation (4 mL). This gives us a standard score of -1.25.

Next, we can use a standard normal distribution table or a calculator to find the corresponding area to the right of -1.25. The area under the curve represents the probability. Looking up the value in the table or using a calculator, we find that the area or probability is approximately 0.8413.

Therefore, the probability that a bottle has a volume greater than 994 mL is approximately 0.8413.

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what is the strongest type of intermolecular force present in cf3(ch2)3oh?

Answers

The strongest type of intermolecular force present in CF3(CH2)3OH is hydrogen bonding.

CF3(CH2)3OH is a molecule containing several different types of atoms, including carbon, hydrogen, oxygen, and fluorine. The molecule is also polar, meaning it has a partial positive charge at one end and a partial negative charge at the other end. This polarity results from the electronegativity difference between the atoms in the molecule. Oxygen and fluorine are more electronegative than carbon and hydrogen, so they pull the electrons in the bond closer to themselves, resulting in a partial negative charge on the oxygen and fluorine atoms and a partial positive charge on the carbon and hydrogen atoms.  The strength of intermolecular forces depends on the polarity of the molecule, as well as its shape and size. In CF3(CH2)3OH, the strongest intermolecular force is hydrogen bonding.

Hydrogen bonding occurs when a hydrogen atom that is covalently bonded to an electronegative atom (such as oxygen or nitrogen) is attracted to a nearby electronegative atom in another molecule. This attraction is much stronger than the typical dipole-dipole interactions that occur between polar molecules.

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Use a Grignard reaction to prepare the following alcohols.
2-Methyl-2-propanol
1-Methylcyclohexanol
3-Methyl-3-pentanol
2-Phenyl-2-butanol
Benzyl alcohol
4-Methyl-1-pentanol

Answers

To prepare the following alcohols using Grignard reactions, you would perform the following steps:

1. 2-Methyl-2-propanol: React methylmagnesium bromide (Grignard reagent) with acetone.
2. 1-Methylcyclohexanol: React methylmagnesium bromide with cyclohexanone.
3. 3-Methyl-3-pentanol: React 2-bromo-3-methylpentane with magnesium, then add ethanal.
4. 2-Phenyl-2-butanol: React phenylmagnesium bromide with 2-butanone.
5. Benzyl alcohol: React phenylmagnesium bromide with formaldehyde.
6. 4-Methyl-1-pentanol: React 1-bromo-4-methylpentane with magnesium, then add methanal.

In each case, the Grignard reagent (alkyl or aryl magnesium halide) reacts with a carbonyl compound (aldehyde or ketone) to produce the desired alcohol.

The reaction proceeds through nucleophilic addition of the Grignard reagent to the carbonyl carbon, followed by protonation with a weak acid, like water or a saturated ammonium chloride solution, to yield the alcohol product.

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Draw the major product(s) of each of the following reactions between L-valine and (a) MeOH, H+ (b) Di-tert-butyl-dicarbonate (c) NaOH, H2o (d) HCI Include stereochemistry in your answer. DO NOT explicitly draw any hydrogen atoms in your structure or use abbreviations like OMe, COOH or Ph.

Answers

(a) The product formed is methyl L-valinate.

(b) The intermediate then undergoes decarboxylation to give the product, tert-butyl N-[(S)-2-amino-3-methylbutanoyl]carbamate.

(c) The product formed is L-valine.

(d) The product formed is L-valine.

(a) The reaction between L-valine and MeOH, H+ is an esterification reaction. The carboxylic acid group (-COOH) of L-valine reacts with the hydroxyl group (-OH) of methanol in the presence of an acid catalyst (H+) to form an ester. The product formed is methyl L-valinate.

(b) The reaction between L-valine and di-tert-butyl-dicarbonate is a carboxylation reaction. The amine group (-NH2) of L-valine reacts with the carbonyl group of di-tert-butyl-dicarbonate to form a carbamate intermediate. The intermediate then undergoes decarboxylation to give the product, tert-butyl N-[(S)-2-amino-3-methylbutanoyl]carbamate.

(c) The reaction between L-valine and NaOH, H2O is a hydrolysis reaction. The amide bond in L-valine is cleaved by the addition of a hydroxide ion (OH-) from NaOH in the presence of water to form the corresponding carboxylic acid and amine. The product formed is L-valine.

(d) The reaction between L-valine and HCl is an acid hydrolysis reaction. The amide bond in L-valine is cleaved by the addition of a proton (H+) from HCl to form the corresponding carboxylic acid and amine. The product formed is L-valine.

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PROBABLE QUESTION

Name the major product(s) of each of the following reactions between L-valine and (a) MeOH, H+ (b) Di-tert-butyl-dicarbonate (c) NaOH, H2o (d) HCI Include stereochemistry in your answer. DO NOT explicitly draw any hydrogen atoms in your structure or use abbreviations like OMe, COOH or Ph.

(a) The major product of the reaction between L-valine and MeOH, H+ is the methyl ester of L-valine.

(b) The major product of the reaction between L-valine and di-tert-butyl-dicarbonate is the tert-butyl ester of L-valine.

(c) The major product of the reaction between L-valine and NaOH, H₂O is L-valine.

(d) The major product of the reaction between L-valine and HCl is the hydrochloride salt of L-valine.

Determine what are the major product(s)?

(a) In the presence of MeOH and an acid catalyst (H+), L-valine undergoes esterification to form the methyl ester of L-valine. This reaction involves the substitution of the carboxylic acid group with a methyl group from MeOH.

(b) Di-tert-butyl-dicarbonate (Boc₂O) reacts with the amino group of L-valine to form the tert-butyl ester of L-valine. The Boc protecting group replaces the amino group of L-valine, protecting it from further reactions.

(c) The reaction with NaOH and water does not introduce any new functional groups to L-valine. It simply results in the deprotonation of the carboxylic acid group, converting it to its conjugate base, L-valine.

(d) The reaction with HCl involves the protonation of the amino group in L-valine, resulting in the formation of the hydrochloride salt of L-valine. The carboxylic acid group remains unchanged.

Therfore, the following products are:

(a) The major product is the methyl ester of L-valine.

(b) The major product is the tert-butyl ester of L-valine.

(c) The major product is L-valine.

(d) The major product is the hydrochloride salt of L-valine.

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Compare the heat of reaction for calcium and acid that you calculated in 2b above with the value you determined experimentally and discuss possible reasons for any discrepancy. (e-g. What kinds of experimental errors might have affected your results? Did you make any observations that might suggest that Hess's law should not be used for this set of reactions? Did you make any assumptions that you believe to be suspect?) What can you conclude about the validity of Hess's law from your experiments?

Answers

Experimental errors such as measurement errors, calculation errors, or equipment malfunctions could have affected the results.

Additionally, incomplete reaction, side reactions, or impurities in the reactants could also lead to discrepancies between the theoretical and experimental values.Observations that suggest Hess's law should not be used for a set of reactions could include the presence of intermediate steps that are not well understood or the presence of non-standard reaction conditions that violate the assumptions of Hess's law.If there are discrepancies between the theoretical and experimental values, it is important to carefully analyze the data and identify possible sources of error before drawing conclusions about the validity of Hess's law. However, if the experimental results are consistent with Hess's law, this provides evidence for the law's.

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at 589. k, δgo equals -56.5 kg for the reaction, 4 nh3(g) 5 o2 ⇌ 4 no(g) 6 h2o(g). calculate the value of ln(k) for the reaction at this temperature to one decimal place.

Answers

The value of ln(k) at 589 K for the reaction 4 NH₃(g) + 5 O₂ ⇌ 4 NO(g) + 6 H₂O(g) is -3.3.

B. The given information is δG⁰ = -56.5 kJ/mol and the reaction equation is 4 NH₃(g) + 5 O₂ ⇌ 4 NO(g) + 6 H₂O(g). The relation between δG⁰ and equilibrium constant K is given by the equation δG⁰ = -RTlnK, where R is the gas constant and T is the temperature in Kelvin. Thus, we can calculate ln(K) as follows:

ln(K) = -δG⁰/RT

= -(56.5 kJ/mol) / (8.314 J/K·mol × 589 K)

= -0.0033

≈ -3.3 (to one decimal place)

Therefore, the value of ln(K) at 589 K for the given reaction is -3.3.

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Which is a stronger base? a. CH3CHCO or CH3CHCC BrCH2CH2CO or CH3CH2CO c. b. CH3CHCH2CO or CH,CH2CHCO d. CH3CCH2CH20 or CH,CH2CCH2O Cl Cl

Answers

Looking at the given compounds, CH₃CHCO and CH₃CHCC have similar base strengths as they both have a carbonyl group with a lone pair of electrons.

So, the correct answer is A.

BrCH₂CH₂CO is a stronger base than CH₃CH₂CO because the electronegative bromine atom pulls electron density away from the carbonyl, making the lone pair of electrons more available.

CH₃CHCH₂CO and CH,CH₂CHCO have similar base strengths as they both have a conjugated system that delocalizes the negative charge.

CH₃CCH₂CH₂₀ is a stronger base than CH,CH₂CCH₂O because the electronegative oxygen atom is more able to donate its lone pair of electrons compared to the electronegative chlorine atom.

Hence the answer of the question is A.

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how many total atoms are there in 43.5 g of methane ( ch4 )?

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To determine the total number of atoms in a given amount of a compound, we need to utilize the concept of moles and Avogadro's number.

First, we need to calculate the number of moles of methane (CH₄) in 43.5 g using its molar mass. The molar mass of methane is:

Carbon (C): 12.01 g/mol

Hydrogen (H): 1.008 g/mol

Molar mass of CH₄ = (12.01 g/mol) + 4(1.008 g/mol) = 16.04 g/mol

Now, we can calculate the number of moles using the formula:

Number of moles = Mass (in grams) / Molar mass

Number of moles of CH₄ = 43.5 g / 16.04 g/mol ≈ 2.712 mol

Next, we utilize Avogadro's number (6.022 x 10²³) to calculate the total number of atoms:

Total number of atoms = Number of moles × Avogadro's number

Total number of atoms in 2.712 mol of CH₄ ≈ 2.712 mol × (6.022 x 10²³ atoms/mol) ≈ 1.633 x 10²⁴ atoms

Therefore, there are approximately 1.633 x 10²⁴ atoms in 43.5 g of methane (CH₄).

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The net ionic equation for the following cell is: Pb | Pb(NO3)2 || NiCl2 | Ni Pb(s) + Ni 2+(aq) → Pb2+ (aq) + Ni(s) Pb2+ (aq) + Ni(s) → Pb(s) + Ni 2+ (aq) Pb(s) + Ni(s) Pb2+ (aq) + Ni 2+ (aq) Pb2+ (aq) + Ni 2+ (aq) → Pb(s) + Ni(s)

Answers

Only those chemical species that actively contribute to a chemical reaction are listed in the net ionic equation for that reaction Pb(s) + Ni₂⁺(aq) → Pb₂⁺(aq) + Ni(s).

To determine the net ionic equation, we need to consider the half-reactions occurring at each electrode.
At the Pb electrode (anode), the oxidation half-reaction is:
Pb(s) → Pb₂⁺(aq) + 2e-
At the Ni electrode (cathode), the reduction half-reaction is:
Ni₂⁺(aq) + 2e- → Ni(s)
Combining these half-reactions, we get the net ionic equation for the electrochemical cell:
Pb(s) + Ni₂⁺(aq) → Pb₂⁺(aq) + Ni(s)

The entire symbols of the reactants and products, as well as the states of matter under the conditions under which the reaction is occurring, are expressed in the complete equation of a chemical reaction.

Only those chemical species that actively contribute to a chemical reaction are listed in the net ionic equation for that reaction. In the net ion equation, mass and charge must be equal.

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calculate the concentration after 2.00 g of kmno4 are diluted to 25.00 ml?

Answers

The concentration after 2.00 g of KMnO4 are diluted to 25.00 mL is 0.506 mol/L.

Molar mass of KMnO4 is approximately 158.03 g/mol. Thus number of moles of KMnO₄ are:

Number of moles= 2.00 g KMnO₄ × (1 mol KMnO₄ / 158.03 g KMnO₄) = 0.01265 mol KMnO₄

Volume in liters is :
25.00 mL × (1 L / 1000 mL) = 0.025 L

Calculate the concentration in mol/L:
Concentration = (moles of solute) / (volume of solution in L)
Concentration = (0.01265 mol KMnO₄) / (0.025 L) = 0.506 mol/L

After diluting 2.00 g of KMnO₄ in 25.00 mL, the concentration is 0.506 mol/L.

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Of the following, which are not polyprotic acids? (select all that apply) Select all that apply: НІ HNO3 НСІ H2SO4

Answers

Of the following, which are not polyprotic acids? (select all that apply)
- HNO3
- НСІ


A polyprotic acid is an acid that has more than one acidic proton, which can be donated in a stepwise manner. Each proton is donated with a different acid dissociation constant (Ka) value.
Out of the given options, HNO3 and НСІ are not polyprotic acids. They both have only one acidic proton and can donate it in a single step.
H2SO4, on the other hand, is a polyprotic acid as it has two acidic protons, which are donated in two steps. The first dissociation of H2SO4 results in the formation of HSO4- ion, which is also an acid and can donate its proton to form SO42- ion.
НІ is also a polyprotic acid as it can donate its proton twice, resulting in the formation of I- and H2I+ ions.
In summary, the not polyprotic acids from the given options are HNO3 and НСІ.

These are monoprotic acids, meaning they can only donate one proton (H+) per molecule. On the other hand, H2SO4 (Sulfuric acid) is a polyprotic acid, as it can donate two protons (H+) per molecule.

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draw the para isomer produced when toluene reacts with br2br2 in the presence of an iron(iii) bromide catalyst. be sure to include in your structure all the requested atoms.

Answers

Hello! The reaction you're referring to is the bromination of toluene. In this reaction, toluene (C₇H₈) reacts with bromine (Br₂) in the presence of an iron(III) bromide (FeBr₃) catalyst. The para-isomer, also known as p-bromotoluene, is produced as a result of this reaction.

In the para-isomer, the bromine atom is attached to the carbon atom that is opposite to the methyl group on the benzene ring. The structure of p-bromotoluene is as follows:
   Br
    |
C₁ - C₂ - C₃ - C₄
|    |    |    |
H  C₆ - C₅ - C₄  CH₃
In this structure:
- Carbon atoms are represented by "C" followed by their respective numbers (C₁, C₂, C₃, etc.).
- Hydrogen atoms are represented by "H."
- The bromine atom is represented by "Br."
- The vertical and horizontal lines between the atoms represent single covalent bonds.
The presence of the FeBr₃ catalyst promotes the reaction, making it more efficient and faster. The para-isomer is formed due to the directing effect of the methyl group, which makes the carbon atoms in the ortho and para positions more reactive. In this case, the para-isomer is the major product because it is sterically less hindered than the ortho-isomer.

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5. How many kilojoules of heat are absorbed when 0. 46 g of chloroethane (C,HCI)


is vaporized at its normal boiling point? The AH vap of chloroethane is 24. 7 kJ/mol.

Answers

The number of kilojoules of heat that are absorbed when 0.46 g of chloroethane (C,HCI) is vaporized at its normal boiling point is 0.18 kJ (approx).

Given data,

Amount of chloroethane (C,HCI) vaporized, n = 0.46 g

= 0.46 / 64.52 mol

= 0.0071 mol

Heat of vaporization of chloroethane, ΔH vap = 24.7 kJ/mol

Normal boiling point is the temperature at which the vapor pressure of the liquid equals the atmospheric pressure.

Pressure = 1 atm= 101.325 kPa

Therefore, the energy required to vaporize the given amount of chloroethane can be calculated as follows;

ΔH = ΔH_vap*n

= 24.7 kJ/mol × 0.0071 mol

= 0.18 kJ

Hence, the correct option is 0.18 kJ.

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how many and bonds are in this molecule? the molecule c h c c h n h. note that there is a carbon carbon triple bond and a carbon nitrogen double bond.

Answers

In the molecule C H C C H N H, there is one carbon-carbon triple bond and one carbon-nitrogen double bond. Therefore, there are a total of 3 sigma bonds and 2 pi bonds in the molecule.


The number of π (pi) bonds in the molecule with the formula CHCCHNH, consider the following:
1. Identify the multiple bonds in the molecule: As you mentioned, there is a carbon-carbon triple bond (C≡C) and a carbon-nitrogen double bond (C=N).
2. Determine the number of π bonds in each multiple bond: A double bond consists of 1 σ (sigma) bond and 1 π bond, while a triple bond consists of 1 σ bond and 2 π bonds.
3. Count the π bonds: In the given molecule, the C≡C triple bond contributes 2 π bonds and the C=N double bond contributes 1 π bond.
In the molecule CHCCHNH, there are a total of 3 π bonds (2 from the C≡C triple bond and 1 from the C=N double bond).

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The number of sigma bonds in the molecule is 4 and the number of pi bonds in the molecule is 2.

What are sigma and pi bonds?

A sigma (σ) bond is formed when two atomic orbitals overlap head-on, resulting in the sharing of electron density along the internuclear axis.

This type of bond is often formed by the overlap of s orbitals, s, and p orbitals, or two p orbitals along the axis connecting the bonded nuclei.

A pi (π) bond is formed by the sideways overlap of two parallel p orbitals that are perpendicular to the internuclear axis.

Pi bonds are typically formed in addition to sigma bonds in molecules with double or triple bonds. Unlike sigma bonds, pi bonds do not allow free rotation around the bond axis.

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Electrons are ejected from a metallic surface with speeds ranging up to 4.8 times 10^5 m/s when light with a wavelength of lambda = 635 nm is used. What is the work function of the surface? What is the cutoff frequency for this surface? Two light sources are used in a photoelectric experiment to determine the work function for a particular metal surface. When green light from a mercury lamp (lambda = 546.1 nm) is used, a stopping potential of 0.838 V reduces the photocurrent to zero. Based on this measurement, what is the work function for this metal? What stopping potential would be observed when using light from a red lamp (lambda = 641.0 nm)?

Answers

The work function of the surface is 3.37 x 10⁻¹⁹ J and the cutoff frequency for this surface is 5.09 x 10¹⁴ Hz.

To find the work function of the surface, we can use the formula for the maximum kinetic energy of the ejected electrons:

Kmax = hf - Φ

where Kmax is the maximum kinetic energy of the electrons, h is Planck's constant, f is the frequency of the incident light, and Φ is the work function of the surface.

First, we need to convert the given wavelength of λ = 635 nm to frequency:

c = λf

where c is the speed of light. Solving for f, we get:

f = c / λ = (3.00 x 10⁻⁸ m/s) / (635 x 10⁻⁹ m) = 4.72 x 10¹⁴ Hz

Now we can use the formula for Kmax to find Φ:

Kmax = hf - Φ

Φ = hf - Kmax = (6.626 x 10⁻³⁴ J s) x (4.72 x 10¹⁴ Hz) - (4.8 x 10⁵ eV x 1.6 x 10⁻¹⁹ J/eV)

Φ = 4.14 x 10⁻¹⁹ J - 7.68 x 10⁻²⁰ J

Φ = 3.37 x 10⁻¹⁹ J

Therefore, the work function of the surface is 3.37 x 10⁻¹⁹ J.

To find the cutoff frequency for this surface, we can use the formula:

f = (Φ / h), where f is the cutoff frequency, Φ is the work function of the surface, and h is Planck's constant.

Substituting the values, we get:

f = (Φ / h) = (3.37 x 10⁻¹⁹ J) / (6.626 x 10⁻³⁴ J s) = 5.09 x 10¹⁴ Hz

Therefore, the cutoff frequency for this surface is 5.09 x 10¹⁴ Hz.

2) The work function of a metal is the minimum amount of energy required to remove an electron from its surface. In the photoelectric effect, the energy of a photon is used to eject an electron from a metal surface. If the energy of the photon is less than the work function, no electrons will be ejected.

We can use the equation for the photoelectric effect to determine the work function of the metal:

KE = hν - φ

where KE is the kinetic energy of the ejected electron, h is Planck's constant, ν is the frequency of the incident photon, and φ is the work function of the metal.

We can rewrite this equation in terms of the stopping potential V, which is the voltage needed to stop the ejected electrons:

KE = eV

where e is the charge of an electron. At the stopping potential, all of the kinetic energy of the ejected electrons is converted into electrical potential energy, which can be measured as the stopping potential V.

For the green light from the mercury lamp (λ = 546.1 nm), the frequency ν is given by:

ν = c/λ

where c is the speed of light. Plugging in the values, we get:

ν = 5.486 × 10¹⁴ Hz

We can now solve for the work function φ using the stopping potential V:

φ = hν/e - V

Plugging in the values, we get:

φ = (6.626 × 10⁻³⁴ J s) × (5.486 × 10¹⁴ Hz)/1.602 × 10⁻¹⁹ C - 0.838 V

φ ≈ 4.31 eV

Therefore, the work function of the metal is approximately 4.31 electron volts (eV).

For the red light from the lamp with λ = 641.0 nm, we can repeat the same calculation using the new frequency ν:

ν = c/λ = (3 × 10⁸ m/s)/(641 × 10⁻⁹ m) ≈ 4.68 × 10¹⁴ Hz

The stopping potential V for this wavelength can be found by rearranging the equation for the work function:

V = hν/e - φ

Plugging in the values, we get:

V = (6.626 × 10⁻³⁴ J s) × (4.68 × 10¹⁴ Hz)/1.602 × 10⁻¹⁹ C - 4.31 eV

V ≈ 0.58 V

Therefore, the stopping potential for the red light is approximately 0.58 V.

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Which argument is supported by the information? A. This gene therapy method should be used to improve other senses such as hearing. B. This gene therapy method should be used to prevent blindness that is caused by sun damage. C. This gene therapy method can help improve vision in some patients with the defective gene. D. This gene therapy method can help improve the eyesight of people without an inherited disease

Answers

Based on the information provided, the argument that is supported is:

C. This gene therapy method can help improve vision in some patients with the defective gene.

Gene therapy is a medical approach aimed at treating or preventing genetic disorders by modifying the genetic material of an individual's cells. It involves introducing functional genes or altering existing genes within the cells of a patient to correct or compensate for a genetic mutation or abnormality.

The given information implies that the gene therapy method discussed is effective in addressing a defective gene that impacts vision. Therefore, it suggests that the gene therapy method has the potential to improve vision in individuals with the specific genetic condition.

Hence, C. This gene therapy method can help improve vision in some patients with the defective gene is correct.

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Which of the following has the lowest lattice energy? Select the correct answer below: O CaO O ᎡᏏCl Bas O SCP

Answers

The compound with the lowest lattice energy among the options given is CaO.

Lattice energy is a measure of the strength of the electrostatic forces between ions in an ionic compound.

It represents the energy required to separate one mole of a solid ionic compound into its constituent ions in the gas phase.

Among the options given, CaO (calcium oxide) has the lowest lattice energy.

This is because CaO consists of a smaller cation ([tex]Ca^{2+}[/tex]) and a larger anion ([tex]$\mathrm{O^{2-}}$[/tex]).

The smaller the ions and the larger the interionic distance, the weaker the electrostatic forces between them and the lower the lattice energy.

In comparison, NaCl (sodium chloride) has a higher lattice energy because both the sodium ion (Na+) and chloride ion ([tex]$\mathrm{Cl^{-}}$[/tex]) are smaller in size than the calcium and oxygen ions in CaO.

Similarly, BaS (barium sulfide) and SrCl2 (strontium chloride) have higher lattice energies due to the smaller size of their ions.

Therefore, among the options given, CaO has the lowest lattice energy.

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