Phospholipids will form a sheet-shaped double layer when placed in water. The correct answer is option c.
This is known as a phospholipid bilayer, which is a fundamental component of cell membranes.
The hydrophilic (water-loving) phosphate heads of the phospholipids face outwards and interact with the water molecules, while the hydrophobic (water-fearing) fatty acid tails face inwards and interact with each other.
The phospholipid bilayer provides a selectively permeable barrier that allows certain substances to pass through the membrane while preventing others from doing so.
Additionally, the fluidity of the phospholipid bilayer can be regulated by various factors, such as temperature and the presence of cholesterol, allowing for optimal membrane function in different cellular environments.
The correct answer is option c.
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Complete Question
What will phospholipids form when placed in water?
a. a sphere-shaped single layer
b. a sphere-shaped double layer
c. a sheet-shaped double layer
d. a sheet-shaped single laye
Alanine is also a_____amino acid and would have similar _____of leucine.
Thus, enzyme activity should be maintained because the ____ should not undergo major change.
Protein structure
protein function
interaction to those
polar acidic
polar basic
function to that
nonpolar
Alanine is also a non-polar amino acid and would have similar Protein structure of leucine. Thus, enzyme activity should be maintained because the polar basic should not undergo major change.
Alanine is an amino acid this is used to make proteins. It is used to interrupt down tryptophan and nutrition B-6. It is a supply of power for muscular tissues and the principal frightened gadget. It strengthens the immune gadget and allows the frame use sugars. Alanine is a nonacidic α-amino acid. Its aspect chain (a methyl group) is neither acidic (it isn't greater acidic than water) nor basic (it does now no longer have a nitrogen atom lone pair that isn't delocalized via way of means of resonance).
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A sample of neon gas exerts a pressure of 1. 18 atm when the temperature is
400 K. What pressure is produced when the temperature is raised to 600 K?
The pressure produced when the temperature is raised to 600 K is 1.77 atm.
The pressure of a gas is directly proportional to its temperature, according to the ideal gas law. This means that if the temperature of a gas increases, its pressure will increase proportionally, assuming that the volume and number of gas molecules remain constant.
In this problem, we are given the initial pressure of neon gas at 400 K, which is 1.18 atm. We need to find the pressure of the gas when the temperature is raised to 600 K.
To solve this problem, we can use the following formula:
P₂ = P₁ x (T₂/T₁)where P₁ is the initial pressure, T₁ is the initial temperature, P₂ is the final pressure, and T₂ is the final temperature.
Substituting the given values, we get:
P₂ = 1.18 atm x (600 K/400 K)P₂ = 1.77 atmTherefore, the pressure produced when the temperature is raised to 600 K is 1.77 atm. This means that the pressure of the neon gas increases by a factor of 1.5 when the temperature is increased from 400 K to 600 K.
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if you insert 2.75 grams of co how many grams of H2 are also used?
The mass of H₂ used in the reaction, given that 2.75 g of CO was inserted is 0.39 grams
How do i determine the mass of H₂ used?The mass of H₂ used in the reaction can be obtained as illustrated below:
Balanced equation:
CO + 2H₂ -> CH₃OH
Molar mass of CO = 28 g/molMass of CO from the balanced equation = 1 × 28 = 28 g Molar mass of H₂ = 2 g/molMass of H₂ from the balanced equation = 2 × 2 = 4 gFrom the balanced equation above,
28 grams of CO required 4 grams of H₂
Therefore,
2.75 grams of CO will require = (2.75 grams × 4 grams) / 28 grams = 0.39 grams of H₂
Thus, we can conclude that the mass of H₂ used in the reaction is 0.39 grams
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QUESTION 6
Write the electron configuration of the following ions. Use the equation editing tool for neatness. It is symbolized with fx.
B a to the power of 2 plus end exponent C a to the power of 2 plus end exponent C u to the power of 2 plus end exponent L i to the power of plus K to the power of plus N a to the power of plus S r to the power of 2 plus end exponent
Electronic configuration of Ba²⁺ is 1s²2s²2p⁶3s²3p⁶4s²3d¹⁰4p⁶5s²4d¹⁰5p⁶; Ca²⁺ is 1s²2s²2p⁶3s²3p⁶; Li⁺ is 1s²; K⁺ is 1s²2s²2p⁶3s²3p⁶; Na⁺ is 1s²2s²2p⁶; Sr²⁺is 1s²2s²2p⁶3s²3p⁶4s²3d¹⁰4p⁶.
Electronic configuration of the elements present in the periodic table is defined as the designation of atoms on the basis of the electrons present in their shells and subshells. The electrons entering in the same valence shell are grouped together which shows similarity in case of physical and chemical properties. Atoms tend to lose electron and attain stable positive charge so as to attain their nearest noble gas configuration.
Electronic configuration of
Ba²⁺ = 1s²2s²2p⁶3s²3p⁶4s²3d¹⁰4p⁶5s²4d¹⁰5p⁶
Ca²⁺= 1s²2s²2p⁶3s²3p⁶
Li⁺=1s²
K⁺ = 1s²2s²2p⁶3s²3p⁶
Na⁺ = 1s²2s²2p⁶
Sr²⁺= 1s²2s²2p⁶3s²3p⁶4s²3d¹⁰4p⁶
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In the "Liquid Oxygen" article, you read about how liquid oxygen is made and how it is needed to fuel rockets. The Universal Space Agency is planning to use liquid oxygen to fuel a rocket, carrying a new surface lander, to Titan. The launch window is short and needs to occur on a specific date or else the Universal Space Agency will need to wait for another year. But, there is a problem. The liquid oxygen machine is producing less liquid oxygen than normal. You have been asked to determine what is causing this problem
To identify the cause of the problem with the liquid oxygen machine's reduced production and help ensure the Universal Space Agency can successfully launch their rocket to Titan within the specified launch window.
In order to determine the cause of the problem with the liquid oxygen machine producing less liquid oxygen than normal for the Universal Space Agency's rocket carrying a new surface lander to Titan, you need to follow these steps:
1. Check the production process: Start by examining the process of making liquid oxygen, which involves cooling and compressing gaseous oxygen until it liquefies. Ensure that the cooling and compression systems are working efficiently.
2. Inspect the machinery: Thoroughly inspect the liquid oxygen machine for any signs of wear and tear, malfunctioning components, or any other issues that could be affecting its performance.
3. Monitor input gas quality: Make sure that the quality of the gaseous oxygen being used in the production process is up to standard, as impurities or low-quality gas can affect the efficiency of the liquid oxygen production.
4. Verify operating conditions: Confirm that the machine is operating under the correct temperature and pressure conditions, as deviations from the optimal settings can reduce the efficiency of the liquid oxygen production.
5. Analyze production data: Review historical production data and compare it to the current performance of the machine to identify any patterns or discrepancies that might indicate a problem.
By following these steps, you should be able to identify the cause of the problem with the liquid oxygen machine's reduced production and help ensure the Universal Space Agency can successfully launch their rocket to Titan within the specified launch window.
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Complete and balance the molecular equation for the reaction between aqueous solutions of lithium fluoride and potassium chloride, and use the states of matter to show if a precipitate forms.
Write the complete ionic equation for the reaction that takes place when aqueous solutions of lithium fluoride and potassium chloride are mixed
The net ionic equation shows that no new compounds are formed, and no reaction occurs between the two aqueous solutions.
The balanced molecular equation for the reaction between aqueous solutions of lithium fluoride (LiF) and potassium chloride (KCl) is:
LiF(aq) + KCl(aq) → LiCl(aq) + KF(aq)
According to the solubility rules, both LiCl and KF are soluble in water, so no precipitate will form.
The complete ionic equation for the reaction is:
Li⁺(aq) + F⁻(aq) + K⁺(aq) + Cl⁻(aq) → Li⁺(aq) + Cl⁻(aq) + K⁺(aq) + F⁻(aq)
In this equation, the soluble ionic compounds are shown as their dissociated ions in the aqueous solution. The spectator ions (Li⁺ and K⁺) do not participate in the reaction, so they are omitted from the net ionic equation:
F⁻(aq) + Cl⁻(aq) → no reaction
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The effect of the stratosphere being colder at the bottom than at the top is:
sudden weather changes
better radio reception
no vertical air movement
the separation of gases into layers
The effect of the stratosphere being colder at the bottom than at the top is: no vertical air movement.
The effect of the stratosphere being colder at the bottom than at the top is the separation of gases into layers. This temperature gradient creates a stable atmosphere, which prevents vertical air movement and sudden weather changes.
Additionally, the separation of gases can enhance radio reception, as radio waves are able to travel further and more easily through stable layers of air.
The effect of the stratosphere being colder at the bottom than at the top is: no vertical air movement. This temperature gradient results in a stable atmosphere with limited mixing, preventing significant vertical air movement within the stratosphere.
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KOH (aq) + H3PO4 (aq) → K3PO4 (aq) + H2O (l)
The above chemical reaction is an example of
A. Synthesis
B. Single replacement
C. Double replacement
D. Decomposition
C. Double Replacement. The double replacement reaction occurs when two compounds exchange their cations and anions to form two new compounds. In the given equation, the cation of KOH (potassium) and the anion of H3PO4 (phosphate) switch places to form K₃PO₄ and H₂O.
What is compound?Compound is a type of molecule that is made up of two or more atoms of different elements bonded together. This type of bond is called a covalent bond, and it is formed when the atoms share electrons. Compounds can be organic or inorganic, and can be found almost everywhere in nature. Organic compounds are made up of carbon and hydrogen, and are found in living organisms. Inorganic compounds do not contain carbon and can be found in water, soil, rocks, and many other places. Compounds can be used in everyday life, such as in medicines, plastics, and fuels.
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2AgNO3(ag) + Cu(s)---> 2Ag (s) + Cu(NO3)2 (aq)
How many moles of Ag will be produced from 3.50 g of Cu?
A total of 0.1102 moles of Ag will be produced from 3.50 g of Cu.
To determine the number of moles of Ag produced from 3.50 g of Cu, we need to use stoichiometry.
From the balanced chemical equation, we see that 1 mole of Cu reacts with 2 moles of Ag to produce 1 mole of Cu(NO₃)₂ and 2 moles of Ag.
First, we need to convert 3.50 g of Cu to moles by dividing by its molar mass, which is 63.55 g/mol.
3.50 g Cu / 63.55 g/mol = 0.0551 mol Cu
Next, we use the stoichiometry ratio to determine the number of moles of Ag produced:
0.0551 mol Cu x (2 mol Ag / 1 mol Cu) = 0.1102 mol Ag
In summary, we use stoichiometry to determine the number of moles of Ag produced from 3.50 g of Cu by first converting the mass of Cu to moles, and then using the stoichiometry ratio from the balanced chemical equation.
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If 450 ml of water are added to 550 ml of a 0.75 m k2so4 solution, what will the molarity of the diluted solution be?
To determine the molarity of the diluted solution, we need to use the equation:
M1V1 = M2V2
where M1 is the initial molarity of the solution, V1 is the initial volume of the solution, M2 is the final molarity of the solution, and V2 is the final volume of the solution.
In this case, the initial solution is a 0.75 M K2SO4 solution with a volume of 550 mL, and water is added to make a final volume of 450 mL. We can write:
M1 = 0.75 M
V1 = 550 mL
V2 = 450 mL
We can solve for M2:
M1V1 = M2V2
0.75 M × 550 mL = M2 × 450 mL
M2 = (0.75 M × 550 mL) / 450 mL
M2 = 0.92 M
Therefore, the molarity of the diluted solution is 0.92 M.
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How many grams of KNO3 are needed to make 1. 50 liters of a 0. 50 M KNO3 solution?
75.83 grams of KNO3 are required to prepare a 0.50 M solution in 1.50 L of water.
To prepare a 0.50 M solution of KNO3 in 1.50 L of water, we can determine the amount of KNO3 required by using the formula:
Molarity (M) = moles of solute / liters of solution
Rearranging the formula, we can calculate the number of moles of KNO3:
moles of KNO3 = Molarity x liters of solution
Given the values, we find:
moles of KNO3 = 0.50 M x 1.50 L = 0.75 moles
To find the mass of KNO3 needed, we need to use its molar mass:
molar mass of KNO3 = 101.10 g/mol
Therefore, the mass of KNO3 required is:
mass of KNO3 = moles of KNO3 x molar mass of KNO3
Substituting the values, we obtain:
mass of KNO3 = 0.75 moles x 101.10 g/mol = 75.83 g
Hence, to prepare a 0.50 M solution in 1.50 L of water, you would need 75.83 grams of KNO3.
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what reactions take place during the electrolysis of water? group of answer choices hydrogen is reduced; oxygen is oxidized oxygen is reduced; hydrogen is oxidized. oxygen gas is reduced; water is oxidized. water is reduced; oxygen gas is oxidized. both oxygen and hydrogen are oxidized and reduced.\
The electrolysis of water involves the passage of an electric current through water, which leads to the splitting of water molecules into their constituent elements, hydrogen and oxygen. The correct answer is (a)
This process occurs through two simultaneous half-reactions at the cathode and anode of the electrolysis cell.
At the cathode, hydrogen ions (H+) are reduced to hydrogen gas (H2) as they gain electrons from the electrode: [tex]2H+ + 2e-[/tex]→ [tex]H2[/tex]
At the anode, water molecules (H2O) are oxidized to oxygen gas (O2) and positively charged hydrogen ions (H+): [tex]2H2O[/tex]→ [tex]O2 + 4H+ + 4e-[/tex]
Therefore, the correct answer is (a) hydrogen is reduced; oxygen is oxidized. During the electrolysis of water, hydrogen is reduced at the cathode, while oxygen is oxidized at the anode.
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--The complete question is, what reactions take place during the electrolysis of water?
group of answer choices
a. hydrogen is reduced; oxygen is oxidized
b. oxygen is reduced; hydrogen is oxidized
c. . oxygen gas is reduced; water is oxidized.
d. water is reduced; oxygen gas is oxidized.
e. both oxygen and hydrogen are oxidized and reduced.--
Calculate the specific heat in J/(g·ºC) of an unknown substance if a 2. 50-g sample releases 12. 0 cal as its temperature changes from 25. 0ºC to 20. 0ºC. ________J/(g·°C)
The specific heat in J/(g·ºC) of an unknown substance if a 2. 50-g sample releases 12. 0 cal as its temperature changes from 25. 0ºC to 20. 0ºC. 2.02 J/(g·ºC).
The specific heat of the unknown substance can be calculated using the formula:
q = m x c x ΔT
where q is the heat released, m is the mass of the substance, c is the specific heat, and ΔT is the change in temperature.
First, we need to convert the given heat release from calories to joules:
12.0 cal x 4.184 J/cal = 50.208 J
Next, we can plug in the given values and solve for c:
50.208 J = 2.50 g x c x (25.0°C - 20.0°C)
c = 2.02 J/(g·°C)
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A 100. -gram sample of liquid water is heated from 20. 0°C to 50. 0°C. Enough KCIO3(s) is dissolved in the sample of water at 50. 0°C to form a saturated solution.
Based on Table G, determine the mass of KClO3(s) that must dissolve to make a saturated solution in 100. G of H20 at 50. 0°C
A 100 gram sample of liquid water is heated from 20. 0°C to 50. 0°C, the mass of [tex]KClO_3[/tex](s) that must dissolve to make a saturated solution in 100 g of H2O at 50.0°C is 60 grams.
Table G must be consulted to establish the mass of [tex]KClO_3[/tex](s) that must dissolve to form a saturated solution in 100 g of H2O at 50.0°C.
According to the table, the solubility of [tex]KClO_3[/tex] at 48°C is 60 grammes of [tex]KClO_3[/tex] per 100 grammes of [tex]H_2O[/tex]. We must examine the solubility at 48°C since the water is heated from 20.0°C to 50.0°C.
Therefore, the mass of [tex]KClO_3[/tex](s) that must dissolve to make a saturated solution in 100 g of [tex]H_2O[/tex] at 50.0°C is 60 grams.
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Your question seems incomplete, the probable complete question is:
A 100. -gram sample of liquid water is heated from 20. 0°C to 50. 0°C. Enough KCIO3(s) is dissolved in the sample of water at 50. 0°C to form a saturated solution.
Based on Table G, determine the mass of KClO3(s) that must dissolve to make a saturated solution in 100. G of H20 at 50. 0°C
The volume of a sample of gas is 2. 8 L when the pressure is 749. 5 mm Hg and the temperature is 31. 2 C. What is the new temperature in degrees Celsius if the volume increases to 4. 3 L and the pressure increases to 776. 2 mm Hg?
a 120 C
b 280 C
c 480 C
d 210 C
The volume of a sample of gas is 2.8 L when the pressure is 749.5 mm Hg and the temperature is 31. 2°C. (c) 480°C is the new temperature in degrees Celsius if the volume increases to 4. 3 L and the pressure increases to 776.2 mm Hg
Using the combined gas law:
(P1V1) / (T1) = (P2V2) / (T2)
Where:
P1 = 749.5 mm Hg
V1 = 2.8 L
T1 = 31.2 + 273.15 = 304.35 K (temperature converted to Kelvin)
P2 = 776.2 mm Hg
V2 = 4.3 L
T2 = ?
Solving for T2:
T2 = (P2V2T1) / (P1V1)
T2 = (776.2 mmHg * 4.3 L * 304.35 K) / (749.5 mmHg * 2.8 L)
T2 ≈ 758 K
Converting T2 back to Celsius:
T2 = 758 K - 273.15 = 484.85°C ≈ 480°C
Therefore, the new temperature is approximately 480°C.
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What volume of 16. 2 M NH3 is required to prepare 350. 0 mL of 0. 200 M NH3
4.3 mL of 16.2 M [tex]NH3[/tex]is required to prepare 350.0 mL of 0.200 M [tex]NH3[/tex]
The molarity equation is:
Molarity (M) = moles of solute / liters of solution
We can rearrange this equation to solve for the number of moles of solute:
moles of solute = Molarity (M) x liters of solution
We can use this equation to determine the number of moles of [tex]NH3[/tex]required to prepare the 350.0 mL of 0.200 M [tex]NH3[/tex] solution:
moles of [tex]NH3[/tex] = (0.200 M) x (0.350 L) = 0.070 moles [tex]NH3[/tex]
Now, we need to determine the volume of 16.2 M [tex]NH3[/tex]required to obtain 0.070 moles of [tex]NH3[/tex]. We can use the following equation:
moles of solute = Molarity (M) x liters of solution
Rearranging the equation to solve for the volume of solution, we get:
liters of solution = moles of solute / Molarity (M)
Plugging in the values, we get:
liters of solution = 0.070 moles / 16.2 M[tex]NH3[/tex] = 0.0043 L
Converting this to milliliters, we get:
volume of 16.2 M [tex]NH3[/tex] = 0.0043 L x 1000 mL/L = 4.3 mL
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Fill in the blank with the correct word or phrase. Darwin proposed a new theory of how evolution works, which he called (za blank fill zis in)
Darwin proposed a new theory of how evolution works, which he called "natural selection."
This theory suggests that the species that are best adapted to their environment are more likely to survive and reproduce, passing on their advantageous traits to their offspring. Over time, these advantageous traits become more common in the population, leading to the evolution of new species.
Darwin's theory of natural selection was a revolutionary idea that challenged traditional beliefs about the origin and diversity of life on Earth. Today, it is widely accepted as the mechanism that drives evolution, and has been supported by numerous scientific studies and observations.
Darwin's work continues to inspire new research and discoveries in the field of evolutionary biology, and his legacy as one of the most influential scientists in history remains strong to this day.
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If you started with 20. 0 g of a radioisotope and waited for 3 half-lives to pass, then how much would remain? 1. 25g
5. 00g
10. 0g
2. 50g
Answer: The answer is 2.50g.
I hope this helps and have a great day!
A student has a sample of copper (I) sulfate hydrate. If the hydrate has a mass of 20 grams and the anhydrous salt has a mass of 12 grams, what is the percent of water in the sample? %
Student has a sample of copper (I) sulfate hydrate, then the percent of water in the sample is 40%.
What is meant by a hydrate?In chemistry, a hydrate is a compound that contains water molecules that are chemically bound to the atoms or ions of the compound.
Mass of the anhydrous salt is given as 12 grams.
So, mass of water = total mass - mass of anhydrous salt
mass of water = 20 g - 12 g
mass of water = 8 g
Now, % water = (mass of water ÷ total mass) × 100
% water = (8 g ÷ 20 g) × 100
% water = 40%
Therefore, the percent of water in the sample is 40%.
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I need help!
Describe the bonding in water molecule using VBT. Show the overlap of hybridized orbitals leading to the formation of H2O molecule. Account for the bond angle 104. 5°.
Answer:
In Valence Bond Theory (VBT), the water molecule is formed by overlapping of two hydrogen 1s orbitals with two hybridized oxygen orbitals. The oxygen atom in the water molecule has two unpaired electrons in two 2p orbitals and two paired electrons in two 2s orbitals. It hybridizes the 2s and 2p orbitals to form four hybridized sp3 orbitals. These four sp3 hybridized orbitals point towards the corners of a tetrahedron.
The two hybridized orbitals of oxygen containing unpaired electrons overlap with the 1s orbitals of two hydrogen atoms. This overlapping results in the formation of two O-H sigma (σ) bonds. The two remaining hybridized orbitals containing the paired electrons do not participate in bond formation.
The bond angle in the water molecule is 104.5°, which is less than the tetrahedral angle (109.5°) because the two lone pairs of electrons on the oxygen atom exert greater repulsion than the two bonding pairs. This causes the bonding pairs to be pushed closer together, resulting in a smaller bond angle.
Describe the bonding you would expect to find in a coin made out of copper?
The bonding you would expect to find in a coin made out of copper is metallic bonding.
Metallic bonding is the strong attraction between positively charged metal ions and the surrounding delocalized electrons in a metallic lattice. Copper is a metal and its atoms are closely packed together, forming a lattice structure. In the case of a copper coin, copper atoms lose their outermost electrons to form positively charged copper ions (Cu⁺), which are then held together by the delocalized electrons that move freely throughout the metal lattice. This type of bonding gives copper its characteristic properties such as electrical conductivity, malleability, and ductility making it an ideal material for coinage.
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!!!9POINTS!!!!! Based on the activity series, which of the reactions will occur?
The reactions that will occur for each activity series include:
A. Mg + NaNO₃ → will occur since Mg is more reactive than Na.B. AI+NISO₄→ will not occur since aluminum is less reactive than nickel.C. Zn + NaNO₃ - will occur since zinc is more reactive than sodium.D. Sn+ Zn(NO₃)₂ → will not occur since tin is less reactive than zinc.What are reactive metals?Reactive metals are metals that easily undergo chemical reactions with other substances, particularly with acids and water, to form new compounds. These metals are usually found in the lower part of the activity series, which means they have a high tendency to lose electrons and form cations.
Examples of reactive metals include alkali metals (such as lithium, sodium, and potassium) and alkaline earth metals (such as calcium and magnesium).
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Image trancribed:
Based on the activity series, which of the reactions will occur?
Least Reactive
Most Reactive Li Na K Mg Al Zn Fe Ni Sn Pb H Cu Ag Pt F₂ Cl₂ Br₂ I₂
Hint: Is the metal element more reactive than the metal ion in the compound?
A. Mg + NaNO3 →
B. AI+NISO4→
C. Zn + NaNO3 -
D. Sn+ Zn(NO3)2 →
Answer:A. Mg + NaNO₃ →
Explanation:
will occur since Mg is more reactive than Na.
A rigid container of N2 has a pressure at 378 kPa at a temperature of 413 K. What is the new pressure at 273 K?
The new pressure at 273 K, given that the initial pressure was 378 KPa, is 249.9 KPa
How do i determine the new presssure?The following parameters were obtained from the question:
Initial pressure (P₁) = 378 KPaInitial temperature (T₁) = 413 KNew temperature (T₂) = 273 KNew pressure (P₂) = ?The new pressure of the gas at 273 K can be obtained as shown below:
P₁ / T₁ = P₂/ T₂
378 / 413 = P₂ / 273
Cross multiply
413 × P₂ = 378 × 273
413 × P₂ = 103194
Divide both sides by 413
P₂ = 103194 / 413
P₂ = 249.9 KPa
Thus, from the above calculation, we can conclude the new pressure at 273 K is 249.9 KPa
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Chemical equilibrium is a dynamic process. What does this mean?
1. Nothing is changing.
2. There are multiple reactants and products involved in the chemical reaction.
3. It appears as though nothing is happening, but there is constant change occurring.
4.The reaction has reached completion and stopped reacting.
Answer: 3. It appears as though nothing is happening, but there is constant change occurring.
Explanation:
equilibrium is the state when the changes cancel each other, and the net change is 0.
think of it like a stalemate in tug of war; both people are pulling, but you wont see anything change, because their forces are equal and in opposite direction :)
How many liters of a 0. 26 M solution of K2(MnO4) would contain 75 g of K2(MnO4)?
1.35 liters of a 0.26 M solution of K2(MnO4) would contain 75 g of K2(MnO4).
To determine the volume of a 0.26 M solution of K2(MnO4) needed to contain 75 g of K2(MnO4), we need to use the formula:
Molarity (M) = moles of solute / volume of solution (L)
First, convert the mass of K2(MnO4) to moles using its molar mass:
Molar mass of K2(MnO4) = 2 * (39.1 g/mol for K) + (54.9 g/mol for Mn) + 4 * (16 g/mol for O) = 214.2 g/mol
Moles of K2(MnO4) = 75 g / 214.2 g/mol ≈ 0.35 moles
Now use the molarity formula to find the volume:
0.26 M = 0.35 moles / volume (L)
Volume (L) = 0.35 moles / 0.26 M ≈ 1.35 L
So, approximately 1.35 liters of a 0.26 M solution of K2(MnO4) would contain 75 g of K2(MnO4).
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The amount of energy needed to change a material from a liquid to a gas is the heat of:.
The amount of energy needed to change a material from a liquid to a gas is called the heat of vaporization. This is a specific type of enthalpy change that occurs when a substance changes phase from a liquid to a gas at a constant temperature and pressure.
The heat of vaporization is a measure of the amount of energy required to break the intermolecular forces holding the molecules in a liquid phase and transform them into a gas phase.
The heat of vaporization is an important physical property of a substance and is used in various fields, such as thermodynamics, chemical engineering, and material science, to understand the behavior and properties of substances in different states.
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A 17. 98-g piece of iron absorbs 2056. 5 joules of heat energy, and its temperature changes from 25°C to 200°C. Calculate the specific heat capacity of iron
The specific heat capacity of iron is 0.449 J/g°C.
The quantity of heat energy needed to raise the temperature of one gram of a substance by one degree Celsius is the substance's specific heat capacity.
The specific heat capacity of iron can be calculated using the formula:
q = mcΔT
where q is the heat energy absorbed by the iron, m is the mass of the iron, c is the specific heat capacity of iron, and ΔT is the change in temperature of the iron.
Substituting the given values:
2056.5 J = (17.98 g) × c × (200°C - 25°C)
2056.5 J = (17.98 g) × c × (175°C)
Solving for c:
c = 0.449 J/g°C
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All else being equal, a reaction with a higher activation energy compared to one with a lower activation energy will:.
All else being equal, a reaction with a higher activation energy will have a slower reaction rate compared to one with a lower activation energy.
Activation energy refers to the minimum amount of energy required for a chemical reaction to occur. The higher the activation energy, the more energy is required to initiate the reaction, and thus the slower the reaction rate.
This is because a higher activation energy means that fewer reactant molecules will have enough energy to overcome the energy barrier and form products. Therefore, reactions with higher activation energies require more energy input to proceed and will typically have a slower reaction rate than those with lower activation energies.
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A solution contains 1.49×10-2 M potassium chromate and 1.04×10-2 M ammonium phosphate.
Solid barium acetate is added slowly to this mixture.
A. What is the formula of the substance that precipitates first?
formula =______ B. What is the concentration of barium ion when this precipitation first begins?
[Ba2+] =__________ M
the concentration of barium ion when precipitation begins is approximately 3x =
3(7.93 × 10^-9 M) = 2.38 × 10^-8 M.
Hence, the concentration of barium ion when precipitation begins is approximately 2.38 × 10^-8 M.
To determine which substance precipitates first and the concentration of barium ion when precipitation begins, we need to consider the solubility product (Ksp) of the possible precipitation reactions.
The possible precipitation reactions are:
Ba(CrO4)2(s) ⇌ Ba2+(aq) + CrO42-(aq) Ksp1 = [Ba2+][CrO42-]^2
Ba3(PO4)2(s) ⇌ 3Ba2+(aq) + 2PO43-(aq) Ksp2 = [Ba2+]^3[PO43-]^2
The substance that precipitates first is the one with the lower solubility product (Ksp) value. To determine the Ksp values, we need to look up the relevant values of the solubility products.
From the solubility product table, we find:
- Ksp1 for Ba(CrO4)2 is 1.17 × 10^-10
- Ksp2 for Ba3(PO4)2 is 1.34 × 10^-23
Comparing the Ksp values, we see that Ksp1 is much larger than Ksp2, indicating that Ba(CrO4)2 is more soluble than Ba3(PO4)2.
Therefore, the precipitate that forms first is Ba3(PO4)2(s).
To determine the concentration of barium ion when precipitation begins, we can use the Ksp2 expression and assume that x mol/L of Ba3(PO4)2(s) dissolves, forming 3x mol/L of Ba2+ and 2x mol/L of PO43-. Since the initial concentration of ammonium phosphate is 1.04×10^-2 M, which is much less than the initial concentration of potassium chromate (1.49×10^-2 M), we can assume that all of the phosphate ions come from the ammonium phosphate and ignore the small contribution from the autoionization of water.
Using the Ksp2 expression and the concentrations of PO43- and Ba2+, we get:
Ksp2 = [Ba2+]^3[PO43-]^2
1.34 × 10^-23 = (3x)^3(2x)^2
Solving for x, we get:
x = 7.93 × 10^-9 M
Therefore, the concentration of barium ion when precipitation begins is approximately 3x =
3(7.93 × 10^-9 M) = 2.38 × 10^-8 M.
Hence, the concentration of barium ion when precipitation begins is approximately 2.38 × 10^-8 M.
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If you had a 32 gram sample of C-14 today, how much would remain in 10,470 years? Remember, the half-life is 5370 years
If we had a 32-gram sample of C-14 today, there would be 4 grams of C-14 remaining in 10,470 years.
The half-life of C-14 is 5370 years, which means that in 5370 years, half of the original sample of C-14 would decay. After another 5370 years, half of what remains would decay, and so on.
This can be modeled by the equation:
[tex]N = N_0(1/2)^{(t/T)[/tex]
Where:
N is the amount of C-14 remaining after time t
N₀ is the initial amount of C-14
T is the half-life of C-14
Using the given information, we can substitute N₀ = 32 g, T = 5370 years, and t = 10,470 years into the equation to find N:
[tex]N = 32 g \cdot (1/2)^{(\frac{10,470 years}{5370 years})[/tex]
N = 4 g
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