Rank the homologous series for a set of alkanes by their boiling point? The boiling points for a set of compounds in a homologous series can be qualitatively predicted using intermolecular force strengths. Using their condensed structural formulas, rank the homologous series for a set of alkanes by their boiling point.
Rank these alkanes from highest to lowest boiling points
1....; The correct answer is heptane 3,3-dimethylpentane hexane butane. Thanks though, your tip helped!

Answers

Answer 1
The boiling point of a compound depends on the intermolecular forces binding them. For ionic and covalent compounds, they have higher boiling points compared to compounds joined by London forces. For alkanes, they would have the same intermolecular forces. It would then matter on the length of the carbon chain. The longer the length is, the higher is its boiling point. So, from the given choices, the highest boiling point would either be heptane or 3,3-dimethylpentane. Both have 7 carbon in its chain, but 3,3-dimethylpentane is branched so it has a lower surface area so it can easily be detached. That's why heptane is placed higher over 3,3-dimethylpentane . This is followed by hexane (6 carbons) and lastly the butane (4 carbons).
Answer 2

Alkanes from highest to lowest boiling points:

1. heptane2. 3.3 dimethyl pentane3. hexane4. butaneFurther explanation

Alkanes are saturated hydrocarbons with all carbon bonds being single bonds

General formula:

[tex]\large{\boxed {\bold {C_nH_{2n + 2}}}[/tex]

There are several rules for naming alkanes from IUPAC:

the name of the branch followed by the name of the main chain the main chain is the longest chain that has the most branches branches are given the name alkyl with the symbol -R, and begin with a number, with the position of the branch getting the smallest number more than one branch is prefixed in, tri, tetra, penta, etc. and in alphabetical order with the smallest number.

In determining the alkane boiling point, if in the same homologous series, then just look for alkanes with the largest relative molecular mass that will have a large boiling point too. So in an alkane in the form of a straight-chain, the more carbon atoms, the longer the main chain, the bigger the boiling point.

But if the relative molecular mass is the same, the alkanes have fewer branches will have a greater boiling point.

The more branches, the lower the boiling point, even though the number of carbon atoms is the same (as in isomers)

In isomers that have the same molecular formula and relative molecular mass, alkanes that have the fewest branches will have the largest boiling point.

So that the general determination of the alkane boiling point is (based on its priority)

1. relative molecular mass

the greater the higher the boiling point

2. main chain branch

the fewer branches the higher the boiling point

The branching on the main chain in the alkane structure causes the attraction between the molecules to be lower so that to release this attractive force only requires low energy, ie at low temperatures

The relative molecular mass of each alkane in the above problem is:

1. heptane: 1002. 3.3 dimethyl pentane: 1003. hexane: 864. Butane: 58

The relative molecular mass values ​​above indicate that there are similarities in the relative molecular mass values ​​of heptane and 3.3 dimethyl pentane. But because the unbranched chain has a higher boiling point so heptane has a greater boiling point than 3.3 dimethyl pentane

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Keywords: alkanes, main chains, branches, boiling points, relative molecular mass

Rank The Homologous Series For A Set Of Alkanes By Their Boiling Point? The Boiling Points For A Set

Related Questions

How is a mixture different from a compound? 1. composition of a mixture may be constant. 2. components of a mixture can be separated by physical means. 3. components of a mixture can only be separated chemically. 4. particles of a mixture are combined chemically?

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The correct answer is 2 hope this helps

Mixture is different from a compound because components of a mixture can be separated by physical means.

What is a compound?

Compound is defined as a chemical substance made up of identical molecules containing atoms from more than one type of chemical element.

Molecule consisting atoms of only one element is not called compound.It is transformed into new substances during chemical reactions. There are four major types of compounds depending on chemical bonding present in them.They are:

1)Molecular compounds where in atoms are joined by covalent bonds.

2) ionic compounds where atoms are joined by ionic bond.

3)Inter-metallic compounds where atoms are held by metallic bonds

4) co-ordination complexes where atoms are held by co-ordinate bonds.

They have a unique chemical structure held together by chemical bonds Compounds have different properties as those of elements because when a compound is formed the properties of the substance are totally altered.

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A sample of gas has a pressure of 3.00 atm at 25 degrees Celsius. What would the pressure be at 52 degrees Celsius if the volume stays constant? Which gas law does this problem represent?

Answers

The law that relate pressure and temperature of gases at constant volumes is Gay-Lussac's Law.

It states that the pressure of a fixed mass of gas is directly proportional to the absolute temperature when the volume is constant.

 P / T = constant => P1 / T1 = P2 / T2

=> P2 = T2 * P1 / T1

Remember that the formula uses absolute temperatures.

T2 = 52 + 273.15 = 325.15 K

T1 = 25 + 273.15 = 298.15 K

=> P2 = 325.15K * 3.00 atm / 298.15K = 3.27 atm.

Answer: 3.27 atm

The national drug code number (NDC) of the drug is included in this section of a drug monograph

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How supplied(page 42-45)

What volume of 0.0250 m calcium hydroxide is required to neutralize 33.50 ml of 0.0200 m nitric acid?

Answers

The chemical formula for calcium hydroxide is Ca(OH)₂ and that of nitric acid is HNO₃. By these chemical formula it can be deduced that the number of equivalents per mole of Ca(OH)₂ is 2 because of 2 OH⁻ and for HNO₃ is 1 because of H⁺.

For the neutralization reaction, the number of equivalents should be equal. 
             V₁n₁ = V₂n₂

Substituting the known values and with the incorporation of the concept above,
     (V₁)(0.0250 mol/L)(2 equivalents/mol) = (33.50 mL)(0.020 mol/L)(1 equivalent/mol)

         V₁ = 13.4 mL

Hence, the volume of calcium hydroxide needed is approximately equal to 13.4 mL. 

Predict how the addition of a catalyst would affect the rate of the reaction below, and explain your prediction. h2 (g) + i2 (g) 2hi

Answers

The reaction will start sooner and maybe come to an end sooner than if no catalyst was added.
This can be explained as follows:
For the chemical reaction to occur, the minimum required activation energy must be available in the system.
A catalyst decreases this activation energy resulting in an earlier start and maybe an earlier termination of the reaction.

Explanation:

A catalyst helps in increasing the rate of a chemical reaction without itself getting consumed in the reaction.

Basically, a catalyst decreases the activation energy so that reactant molecules can easily participate in the reaction.

For example, when a catalyst is added to [tex]H_{2}(g) + I_{2}(g) \rightarrow 2HI[/tex] then there will be a decrease in activation energy and both reactants (hydrogen and iodine) can easily participate in the chemical reaction.

As a result, formation of product (HI) becomes faster.

Thus, we can conclude that a catalyst helps in increasing the rate of a reaction.

How is the volatility of a substance related to the intermolecular forces present within the substance? how is the volatility of a substance related to the intermolecular forces present within the substance? the weaker the intermolecular forces, the more likely it is that molecules are to evaporate at a given temperature, making the liquid more volatile. the volatility of a substance does not depend on the intermolecular forces present within the substance. the stronger the intermolecular forces, the more likely it is that molecules are to evaporate at a given temperature, making the liquid more volatile?

Answers

Weaker the intermolecular forces present the less the energy is required to break these forces and change its state from liquid to vapors/gas.
More stronger the intermolecular forces the less the volatile the substance be as the more energy or temperature is required to overcome these intermolecular forces

The less volatile a chemical is, the stronger the intermolecular interactions must be overcome before they can be overcome using energy or temperature.

What is intermolecular interaction ?

Intermolecular forces, such as the electromagnetic forces of attraction or repulsion that act between atoms and other kinds of nearby particles, such as atoms or ions, mediate interactions between molecules.

Intermolecular forces come in five flavors: ion-induced dipole forces, dipole-induced dipole forces, induced dipole forces, and dipole-dipole forces. Ions and polar (dipole) molecules are held together by ion-dipole forces.

Ionic bonds, hydrogen bonds, Van der Waals dipole-dipole interactions, and Van der Waals dispersion forces are the four main intermolecular force.

Thus, The weaker the intermolecular interactions, the less energy is needed to overcome them and convert the substance from liquid to vapor or gas.

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Nuclear fusion of hydrogen into helium occurs in the

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There are types of nuclear reaction: nuclear fusion and nuclear fission. The difference is that fusion is a combination of two elements while fission is the breaking up of the subatomic particles of an element creating a new element. The limiting element to this is Iron. Iron-26 is the most stable element. As a result, elements lighter than Fe-26 are generally fusible. This includes hydrogen and helium.

This reaction is common in the stars, most especially the Sun. The energy of the Sun comes from its abundant hydrogen composition which becomes fusible into Helium. This occurs at a temperature of 14 million Kelvin. The nuclear reaction is a not a one-way step process as shown in the picture.

Nuclear fusion of hydrogen into helium occurs in the core of stars, specifically in their stellar cores.

This process is known as stellar nucleosynthesis and is the primary source of energy production in stars. The intense heat and pressure in the core of a star allow hydrogen nuclei (protons) to overcome their mutual electrostatic repulsion and undergo fusion reactions. It results in the formation of helium nuclei.

The most common fusion reaction in stars is the proton-proton chain, which involves a series of steps leading to the conversion of four hydrogen nuclei into one helium nucleus.

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How is the rate of evaporation of a liquid affected by (a) temperature, (b) the surface area of liquid exposed to air, (c) intermolecular forces??

Answers

Final answer:

The rate of evaporation is higher with increased temperature, greater surface area, and weaker intermolecular forces; temperature rise decreases the surface tension of water.

Explanation:

The rate of evaporation of a liquid is influenced by several factors. Let us look at these factors one by one:

Temperature: As temperature increases, the average kinetic energy of the molecules also increases. This means more molecules have sufficient energy to overcome the intermolecular forces and escape into the gas phase, thus increasing the rate of evaporation.

Surface Area: The greater the surface area exposed to air, the more molecules are available to evaporate at any given time, leading to a higher rate of evaporation.

Intermolecular Forces: Stronger intermolecular forces make it more difficult for molecules to escape into the gas phase, resulting in lower rates of evaporation. Conversely, weaker intermolecular forces enhance the rate of evaporation.

If we specifically look at how temperature affects surface tension, we note that an increase in temperature will generally result in a decrease in the surface tension of water. This happens because as the temperature rises, the molecules have more kinetic energy, which disrupts the cohesive intermolecular forces between water molecules, thus decreasing surface tension.

QUESTION 5

In their compounds, metals:

are assigned positive oxidation numbers

are assigned negative oxidation numbers

are assigned oxidation numbers of zero

can be assigned any oxidation number that balances the equation

QUESTION 6

In the reaction, Zn (s) + Fe+2 (aq) Imported Asset Zn+2 (aq) + Fe (s), the oxidizing agent is:

the Zn

the Fe

the Zn+2

the Fe+2

Answers

For the first question, the correct answer would be the first option. In their compounds, metals are assigned positive oxidation numbers. They have positive oxidation reactions since when in their compounds they are the one to donate their electrons making them positive from their neutral state. For the second question, the correct answer would be the last option. The oxidizing agent would be the iron ion or the Fe2+. The oxidizing agent is the one that is being reduced in the reaction since it accepts the electrons given by the reducing agent. The reducing agent would be the zinc metal.

In compounds, metals have positive oxidation numbers; for instance, iron has a +2 oxidation number in FeO. In the reaction Zn + Fe2+  → Zn2+ + Fe, Fe2+ is the oxidizing agent as it gains electrons and is reduced.

In their compounds, metals are generally assigned positive oxidation numbers because they tend to lose electrons and form cations. For example, in FeO, iron has an oxidation number of +2 (Fe2+), correctly balancing the -2 charge from oxygen to result in a neutral compound.

Regarding the reaction Zn (s) + Fe2+ (aq) → Zn2+ (aq) + Fe (s), the oxidizing agent is the species that is reduced by gaining electrons. In this case, Fe2+ is the oxidizing agent because it gains electrons from Zn to form Fe (s). The Zn is oxidized to Zn2+, making it the reducing agent.

What is the molarity of a sodium hydroxide solution if 35.4 ml of this solution is neutralized by 24.2 ml of 1.19 m sulfuric acid solution?

Answers

The item above can be calculated by equating the equivalents of the solutions. 

The equivalent of the solution is calculated by through normality. Normality is equal to molarity if the compound has only 1 equivalent.
  
                           1.19 M H2SO4 = 2.38 N H2SO4

                             N1V1 = N2V2

For sodium hydroxide, NaOH, molarity is equal to normality.
 
                        (N1)(35.4 mL) = (2.38)(24.2 mL)
                                N1 = 1.627 N = 1.627 M

Thus, the molarity of the NaOH solution is equal to 1.627. 
Final answer:

The molarity of the sodium hydroxide solution is approximately 0.818 M.

Explanation:

To determine the molarity of the sodium hydroxide solution, we can use the equation for the reaction between sodium hydroxide and sulfuric acid: 2NaOH + H₂SO4 → Na₂SO4 + 2H₂O. From the balanced equation, we can see that the ratio of NaOH to H₂SO4 is 2:1. Thus, if 24.2 mL of 1.19 M sulfuric acid solution neutralizes 35.4 mL of the sodium hydroxide solution, we can set up the following equation:

Molarity of NaOH × Volume of NaOH = Molarity of H₂SO4 × Volume of H₂SO4

Molarity of NaOH × 35.4 mL = 1.19 M × 24.2 mL

Rearranging the equation, we get:

Molarity of NaOH = (1.19 M × 24.2 mL) / 35.4 mL

Calculating the molarity of NaOH, we find that it is approximately 0.818 M.

The solubility of silver chloride can be increased by dissolving it in a solution containing ammonia. agcl (s) ag+ (aq) + cl- (aq) k1 = 1.6 x 10-10 ag+ (aq) + 2nh3 (aq) ag(nh3)2+ (aq) k2 = 1.5 x 107 what is the value of the equilibrium constant for the overall reaction? agcl (s) + 2nh3 (aq) ag(nh3)2+ (aq) + cl- (aq) knet = ?

Answers

Final answer:

To calculate the net equilibrium constant for the dissolution of silver chloride in ammonia, the individual constants for the dissolution of AgCl and the formation of  [tex][Ag(NH_3)_2]^+[/tex] are multiplied, yielding Knet = 2.4 x 10^-3.

Explanation:

The solubility of silver chloride (AgCl) in ammonia solution can be analyzed using the concept of equilibrium constants. The equilibrium constant (K) for the dissolution of AgCl in water is given as 1.6 x 10-10, and the formation constant (K2) of the complex ion [tex][Ag(NH_3)_2]^+[/tex] is 1.5 x 107. To find the net equilibrium constant (Knet) for the overall reaction where AgCl dissolves in the presence of NH3 to form the complex ion and release Cl-, we can multiply the individual constants: K1 * K2. Thus, Knet = (1.6 x 10-10)(1.5 x 107) = 2.4 x 10-3.

Write the ions present in a solution of na3po4.

Answers

The ions present in the solution of Na₃PO₄ are:
3Na⁺¹ and 1PO₄⁻³
 there are 3 sodium ions (Na⁺¹) are present, these are cations (+).
And 1 phosphate ion (PO₄⁻³) is present, this is anion (-),
When these cations and ions meet together a compound is formed, in this case 3 sodium ions make a bond with 3 oxygens of phosphate and makes a compound of sodium phosphate.

The ions present in the solution of [tex]\rm Na_3PO_4[/tex] will be [tex]\rm Na^+\,,\;PO_4^-\;,\;H_2PO_4^-\;,\;HPO_4^2^-[/tex].

The solution of [tex]\rm Na_3PO_4[/tex] will results in the dissociation of the molecule.

The dissociation will be:

[tex]\rm Na_3PO_4\;\rightarrow\;3\;Na_+\;+\;PO_4^-[/tex]

Thus the dissociation will result in the 3 sodium ions and 1 phosphate ion. The phosphate ion in the water solution will form phosphonium ions as well.

Thus the ions in the solution will be:

[tex]\rm Na^+\,,\;PO_4^-\;,\;H_2PO_4^-\;,\;HPO_4^2^-[/tex].

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Determine the oxidation number of sulfur in NaHSO4.\

Answers

The oxidation number is VI

Calculate the pressure in atmospheres exerted by 10.0moles of hydrogen gas at 293 kelvins if it is stored in a 7.50 liter container. Your value should be a decimal number written to three significant figures. Given: R= 0.08205 liter x atmosphere/mole x kelvin

Answers

To determine the pressure of the gas, we need an equation which would relate pressure to the values given like the number of moles, temperature and the volume of the system. For simplicity, we can assume that the hydrogen gas is an ideal gas so we use the equation PV=nRT where P is the pressure, V is the volume, n is the number of moles, R is the universal gas constant and T is the temperature. 

PV = nRT
P = nRT / V
P = 10.0 mol  (0.08205 L - atm / mol-K) (293 K) / 7.50 L
P = 32.0542 atm

 Therefore, the pressure of the system would be 32.054 atm

Answer:

The correct answer is 32.1 atm. If you rearrange the ideal gas law equation to find pressure (P) and substitute the known values for the rest of the variables (n, T, and V), we get pressure equal to 32.1 atm.

Explanation:

I don't cap. Anyways good luck! I believe in you!

In [cu(nh3)4]co3, how many 3d electrons does copper have?

Answers

Copper has a total of 29 electrons which would place the atom on the 29th number in the periodic table. In [Cu(NH₃)₄], there are 9 3d electrons of copper. The electron configuration of copper is [Ar] 4s² 3d¹⁰ but since there is a sub shell of its figuration that indicates only 1 electron filled, and since it is in the law that an electron must be paired up with another electron no matter how completely filled is the last sub shell, that is why the ast electron was given up to the other sub shell making it 9. The d shell can occupy around 10 electrons so it means that copper is a stable atom in the 3d sub shell. When you add [Cr(H₂O)₆]³⁺ (aq) and NH₃ (aq) a green solution because both are aqueous in form, you will get a purple solution containing [Cr(NH₃)₆]³⁺ (aq) and H₂O (l). 

What would be the formula of the precipitate that forms when pb(no3)2 (aq) and k2so4 (aq) are mixed?

Answers

The formula of the ppt. formed is PbSo4 , which is inslouble.

The oxidation numbers of nitrogen in nh3, hno3, and no2 are, respectively:

Answers

The oxidation numbers for Nitrogen are respectively -3, +5, +4

Answer:

The oxidation number are

NH₃: -3

HNO₃ : +5

NO₂ : +4

Explanation:

The oxidation number is calculated considering that

a) oxidation number of hydrogen is +1 in all compounds except hydrides

b) oxidation number of oxygen is -2 in all compound except peroxides, superoxides and compound of fluorine.

a) NH₃ : let the oxidation number of nitrogen is "x"

x + 3 (+1) = 0

Therefore x = -3

b) HNO₃

Let the oxidation number of nitrogen is "x"

+1 + x +3(-2) = 0

x = -5.

c) NO₂

Let oxidation number of nitrogen ix "x"

x + 2(-2)= 0

x = +4

Constance is making a vegetable soup that contains carrots, beans, water, salt, pepper, bits of ham, and onions. the soup has to cook for 4 hours. while the soup is cooking, what will happen to some of the minerals that are in its ingredients?

Answers

During the cooking process and due to the presence of heat, some of the minerals from the ingredients as well as part of the fluid found within the ingredients will just leak out of the ingredients into the soup and become part of the soup itself.
Final answer:

Cooking can alter the structure of proteins and destroy certain vitamins in the soup ingredients, while salt acts as a preservative to prevent bacterial growth.

Explanation:

When the soup is cooking, some of the minerals in its ingredients may undergo changes. For example, cooking can alter the structure of proteins in the ham and vegetables, making them easier to digest. However, cooking can also destroy certain vitamins, such as vitamins B and C in vegetables. Additionally, salt, which is a mineral, is used as a preservative in the soup, preventing the growth of bacteria by dehydrating them through osmotic pressure.

Determine the [oh] concentration in a 0.169 m ca(oh)2 solution. 0.338 m 0.169 m 5.92 x 10-14 m 2.96 x 10-14 m 0.298 m

Answers

Answer: 0.338
Explanation
Ca(OH)2 , also known as calcium hydroxide, is a strong base although it is not very soluble in water.
Therefore the concentration of 1 OH is equal to 0.169 m,
Since Ca(OH)2 contains two OH, therefore, concentration of O[OH] is given as:
[OH] = 2 x 0.169 = 0.338 m 
Final answer:

The [OH-] concentration in the 0.169 M Ca(OH)2 solution is 0.0088 M. The pOH of the solution is 2.055, and the pH is 11.945.

Explanation:

We begin by determining the concentration of hydroxide ions, [OH-], in the Ca(OH)2 solution. Since Ca(OH)2 is a strong base, there are two OH ions for every formula unit dissolved, so the concentration of OH- is 2 times the concentration of Ca(OH)2. Therefore, [OH-] = 2 × 0.0044 M = 0.0088 M.

The concentration of hydroxide ions can be used to calculate the pOH of the solution. The pOH is obtained by taking the negative logarithm of [OH-]. In this case, pOH = -log(0.0088) = 2.055.

To calculate the pH of the solution, subtract the pOH from 14. pH = 14 - 2.055 = 11.945.

What is the concentration of hydroxide ions in a solution with a pH of 5.24?
5.75 × 10-6
1.74 × 10-9
1.55 × 10-7
4.54 × 10-4

Answers

pOH=-lg[OH⁻]

pOH=14-pH

-lg[OH⁻]=14-pH

[OH⁻]=10^(pH-14)

[OH⁻]=10^(5.24-14)=1.7378×10⁻⁹ ≈1.74×10⁻⁹ mol/L

Answer:

The concentration of hydroxide ions in a solution with a pH of 5.24 is [tex]1.74\times 10^{-9} M[/tex].

Explanation:

The pH of the solution is defined as negative logarithm of [tex]H^+[/tex] ions in solution.

[tex]pH=-\log[H^+][/tex]

The pH of the solution = 5.24

Sum of pH and pOH is equal to 14.

[tex]pH+pOH=14[/tex]

[tex]pOH=14-pH=14-5.24=8.76[/tex]

[tex]pOH=-\log[OH^-][/tex]

[tex]8,76=\log[OH^-][/tex]

[tex][OH^-]=1.7378\times 10^{-9}\approx=1.74\times 10^{-9} M[/tex]

The concentration of hydroxide ions in a solution with a pH of 5.24 is [tex]1.74\times 10^{-9} M[/tex].

Baking soda (nahco3) decomposes when it is heated according to the equation below. how many kilojoules of heat are required to decompose 1.96 mol nahco3(s)

Answers

Final Answer:

To decompose 1.96 mol of NaHCO₃ (s), 199.2 kJ of heat is required.

Explanation:

When baking soda (NaHCO₃) decomposes upon heating, it undergoes a chemical reaction, producing sodium carbonate (Na₂CO₃), water vapor (H₂O), and carbon dioxide gas (CO₂). The balanced equation for this reaction is:

NaHCO₃ (s) [tex]\rightarrow \text[/tex] {Na₂CO₃ (s) + H₂O (g) + CO₂ (g)

To determine the heat required to decompose a given amount of (NaHCO₃), we can use the stoichiometry of the reaction. The coefficient in front of (NaHCO₃) in the balanced equation is 2, indicating that 2 moles of (NaHCO₃) produce the products mentioned in the reaction.

Given that we have 1.96 mol of (NaHCO₃), we can set up a proportion to find the heat required:

[tex]\[\frac{\text{moles of } NaHCO₃}{\text{coefficient of } NaHCO₃} = \frac{\text{heat required}}{\text{coefficient of } Na₂CO₃}\][/tex]

[tex]\[ \frac{1.96}{2} = \frac{\text{heat required}}{1} \][/tex]

Solving for the heat required:

[tex]\[ \text{heat required} = 1.96 \times \frac{1}{2} \times \text{heat of the reaction} \][/tex]

The heat of the reaction can be obtained from thermochemical tables or databases. For the given reaction, it is typically around 199.2 kJ. Therefore, the heat required to decompose 1.96 mol of (NaHCO₃) is [tex]\(1.96 \times \frac{1}{2} \times 199.2 = 99.6\) kJ.[/tex]

In conclusion, 99.6 kJ of heat is needed to decompose 1.96 mol of (NaHCO₃) based on the provided chemical reaction.

Complete Question:

Baking soda (NaHCO₃) decomposes when it is heated according to the equation below:

[tex]\[2 \text{NaHCO}_3 (s) \rightarrow \text{Na}_2\text{CO}_3 (s) + \text{H}_2\text{O} (g) + \text{CO}_2 (g)\][/tex]

How many kilojoules of heat are required to decompose 1.96 mol of NaHCO₃ (s)?

Which statement highlights a unique role of water in a biological system

Answers

The statement that has a places of interest in the unique role of water in a biological system is that water provides organisms a medium to transport materials. A transport system is describing by which materials are stimulated or transport from an interchange surface or altercation surfaces to cell situated entirely over the organism. The medium used in transport is water based which comprises materials including the various size and shapes of molecules that can be carried out. The water stands as a solvent for an extensive range of substances and runs simply at the temperatures of living organisms and plants. An examples of transport in animal transport systems consist of blood, lymph and hemolymph. . 

Which best describes how the current scientific model of the atom was developed the model was the result of hundreds of years of experiments recent experiments in a valid in most of the book of last 200 years most of the discoveries from the early nineteen-hundreds was shown to be incorrect new experiments for ignored or they did not agree with the accepted Theory

Answers

Answer:

The model was the result of hundreds of years of experiments. however we have had modifications.

Explanation:

One tablespoon of peanut butter has a mass of 17.0 g. it is combusted in a calorimeter whose heat capacity is 110 kj/°c. the temperature of the calorimeter rises from 21.2 âc to 24.4 âc . what is the caloric content of peanut butter in cal/g?

Answers

If the calorimeter whose heat capacity is 110 kJ/°C rises its temperature from 21.2°C to 24.4°C, the heat transmited to it is: 110 kJ/°C * (24.4°C - 21.2°C) = 110kJ/°C (3.2°C) = 352 kJ.

That heat is generated by the combustion of 17.0 g of peanut butter, so the caloric content of it is: 352kJ / 17.0 g = 20.705 kJ/g.

Now use the conversion from kJ to cal:

1 cal = 4.184 J

=> 20.705kJ/g * 1000 J/kJ * 1cal/4.184J = 4948.6 cal/g

Answer: 4948.6 cal/g
Final answer:

The caloric content of peanut butter is approximately 1,347 cal/g.

Explanation:

To find the caloric content of peanut butter in cal/g, we need to calculate the amount of heat transferred from the combustion of the peanut butter. We can use the formula:

q = mcΔT

Where q is the heat transferred, m is the mass of the peanut butter, c is the heat capacity of the calorimeter, and ΔT is the change in temperature.

Using the given values:

Mass of peanut butter (m)= 17.0 g Heat capacity of calorimeter (c) = 110 kJ/°C Change in temperature (ΔT) = 24.4 °C - 21.2 °C = 3.2 °C

Substituting these values into the formula:

q = (17.0 g)(110 kJ/°C)(3.2 °C)

q ≈ 5,632 J

To convert joules to calories, we divide by 4.184 (1 cal = 4.184 J):

5,632 J ÷ 4.184 cal/J ≈ 1,347 cal

Therefore, the caloric content of peanut butter is approximately 1,347 cal/g.

A chemist dissolves 192.mg of pure sodium hydroxide in enough water to make up 150.ml of solution. calculate the ph of the solution.

Answers

Sodium hydroxide (NaOH) is a strong base, which means it should dissociate (more or less) fully. This means there's a 1:1 ratio of Na to OH⁻, making concentration calculations easy. 
First, use the molar mass to calculate how many moles of OH⁻ is in 192 mg of NaOH. (The molar mass of NaOH is approximately 40.0 g/mol.) 
192 g NaOH × 1 mol / 40.0 g NaOH = 4.80 mol NaOH (and OH⁻)
Then, find the concentration by dividing that by by the volume of liquid. We must first convert it to liters: 
150. mL × 1 L / 1000 mL = 0.150 L 
4.80 mol OH⁻ / 0.150 L = 32.0 mol/L OH⁻
Then, we apply −㏒ to the concentration.
−㏒32.0 = −1.505.

We are not done. This is pOH, and we want pH. There's a few ways to find pH, but the easiest one (given that the solution's at STP) is to subtract the answer from 14 (pH + pOH = 14).
14 − (−1.505) = 15.505 (note that with pH, only the figures after the decimal point count as significant figures).

Another way is to take the concentration of OH- and find the concentration of H₃O⁺. We take Kw (1.0 x 10⁻¹⁴) and divide it by 32.0, since [OH⁻] x [H₃O⁺] = Kw.
1.0 x 10⁻¹⁴ / 32.0 M OH⁻ = 3.13 x 10⁻¹⁶ M H₃O⁺
Then apply −㏒ to the concentration:
−㏒3.13 x 10⁻¹⁶ = 15.505. 

The answer is pH = 15.505.

Water beads up on waxy surfaces because of a ___________ degree of adhesion with the surface?

high
low

Answers

Low
Water is better at sticking together with other water molecules than it is with the "waxy surfaces".

the correct answer is low

How many carbon atoms are in the fragment that is fed into the citric acid cycle to bind with oxaloacetate and what is this molecule called?

Answers

I believe that there are 2 carbon atoms in the intermediate molecule known as acetyl coenzyme A. Which is fed into the citric acid cycle to bind with oxaloacetate.

Titration experiments require the use of a...
Watch glass
Burette
Crucible
Bunsen burner

Answers

Titration experiments require the use of a burette. It is a long graduated glass tube held in place by a clamp stand. It has a tap fixture on the end that regulates the delivery of small volumes of liquid into a beaker in the titration process. Bunsen burners are used to heat substances and crucibles are used to hold items to be heated to high temperatures. 

If heat energy is absorbed by the system during a chemical reaction, the reaction is said to be

Answers

the reaction is said to be Endothermic.

What is/are the product(s) of a neutralization reaction of a carboxylic acid?

Answers

RCOOH + NaOH → RCOONa + H₂O   (salt and water)

RCOOH + OH⁻ → RCOO⁻ + H₂O

The products of neutralization reaction of carboxylic acid are salt of weak acid and water.

What are neutralization reactions?

Neutralization reactions are chemical reactions wherein acid and a base react to form salt and water as the products.In these reactions, the H[tex]^+[/tex] and OH[tex]^-[/tex] ions combine to give water.

Neutralization reactions wherein strong acid and strong base are involved the pH of solutions is 7.The neutralization reaction of strong acid and weak base result in solution with pH less than 7 and pH  is greater 7 when neutralization takes place between strong base and weak acid.

Salts formed from neutralized solution has equal weight of acid and base.Most commonly used application  of neutralization reactions is titrations. Neutralization reactions are a type of double displacement reactions.These reactions are important because it affects behavior of solution and it's interaction with other substances.

Learn more about neutralization reactions ,here:

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