The carbon atoms in large complex molecules are bonded to other atoms with

Answers

Answer 1
covalent bonds i think

Related Questions

A 0.784 g sample of magnesium is added to a 250 ml flask and dissolved in 150 ml of water. magnesium hydroxide obtained from the reaction required 215.0 ml of 0.300 m hydrochloric acid to completely react. how many moles of hcl were used?

Answers

A lot of values are given but we must focus only on HCl.

There are 215 mL (0.215 L) of 0.300 M HCl that was completely   used. We must remember the moles is simply the product of volume and molarity, that is:

 

number of moles = 0.215 L * 0.300 M

number of moles= 0.0645 moles HCl

What is the maximum number of electrons that can occupy the 3rd electron shell

Answers

18. The first shell can occupy 2, the second can occupy 8, (2+6), and the third can occupy 18, (2+6+10). The formula for finding the number of electrons a shell can hold is 2(n^2).

According to electronic configuration there are 18 electrons that can occupy the 3rd electron shell.

What is electronic configuration?

Electronic configuration is defined as the distribution of electrons which are present in an atom or molecule in atomic or molecular orbitals.It describes how each electron moves independently in an orbital.

Knowledge of electronic configuration is necessary for understanding the structure of periodic table.It helps in understanding the chemical properties of elements.

Elements undergo chemical reactions in order to achieve stability. Main group elements obey the octet rule in their electronic configuration while the transition elements follow the 18 electron rule. Noble elements have valence shell complete in ground state and hence are said to be stable.

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Give an example of a two phase mixture and describe how you would separate the substances

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A two phase mixture is a mixture of two different substances. for example, a soft drink ( liquid and gas). to separate these two substances, you could heat the liquid and then capture the carbon dioxide.Also this is a question you need to answer for yourself there is many answers.
Water and salt, you add them and mix. To separate you would boil the water, the salt would remain while the water would evaporate. Let me know if this helps.

Which of the following examples demonstrates acceleration? Question 17 options: A boy running at a constant speed across the street. A car traveling at 60 mph turns left around a curve. A horse standing in a pasture. A track star is maintaining the same speed as he crosses the finish line.

Answers

A boy running at a constant speed across the street.
Hey so i am taking the test and my sources say that the answer is A.) A boy running at a constant speed across the street. This is because the boy is moving at a rate that is growing while he runs. This is also known as velocity. 
Hope I Helped
TeenOlaflover <3

A scientist has two solutions, which she has labeled solution a and solution
b. each contains salt. she knows that solution a is 65% salt and solution b is 80% salt. she wants to obtain 120 ounces of a mixture that is 70% salt. how many ounces of each solution should she use?

Answers

Let's make ;
A = ounces solution A
B = ounces solution B


total number of ounces: 
A + B = 120

concentration:
0.65A + 0.80B = 0.7(120)

 Substitute A for 120 - B in the second equation to combine them.

0.65(120 - B) + 0.80B = 84
78 - 0.65B + 0.80B = 84
0.15B = 84 - 78
0.15B = 6
B = 6/0.15
 
B = 40 ounces
Then... A = 120 - 40
A = 60 ounces

To create a 120-ounce mixture that is 70% salt using Solution A (65% salt) and Solution B (80% salt), the scientist needs to mix 40 ounces of Solution A with 80 ounces of Solution B.

To solve this problem involving solution mixture, we can use the concept of the weighted average to find how many ounces of Solution A and Solution B are needed to create a new solution of desired concentration.

Let the amount of Solution A to be used be x ounces and the amount of Solution B be 120-x ounces.

Set up the equation considering that Solution A is 65% salt and Solution B is 80% salt, and we want a final mixture that is 70% salt of 120 ounces total.

The equation to be solved is 0.65x + 0.80(120-x) = 0.70(120).

Simplify and solve the equation for x.

Substitute x back into 120-x to find the amount of Solution B needed.

In this case, solving the equation gives us x = 40 ounces of Solution A and 120-x = 80 ounces of Solution B needed to achieve the 70% salt mixture.

Suppose the innermost orbit an electron can occupy has an energy level of -19 eV. Based on the absorption spectrum shown below, what is the energy of energy level 4?

Answers

Final answer:

The energy of the 4th energy level, taking into account the shift in energy levels in the given problem, is -6.25 eV.

Explanation:

The energy levels of an electron in an atom are quantized, meaning they can only have certain specific values. The question states that the innermost orbit of an electron has an energy level of -19 eV.

In a regular hydrogen atom, the ground state or the lowest energy state is -13.6 eV. If we consider the absorption spectrum, it provides information about the energy required for the electron to move from one energy state to another.

Given that the innermost energy state (n = 1) is -19 eV and not the regular -13.6 eV, it implies that energy levels of the hydrogen atom have been shifted by a constant value. The difference, i.e., -19 eV - (-13.6 eV) = -5.4 eV needs to be considered.

So, for the 4th energy level, E4, it should be E4 = (-13.6 eV / 4²) - 5.4 eV = -0.85 - 5.4 = -6.25 eV. Note, the energy decreases as we move from the 1st to 4th energy level, hence the negative sign.

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Most acids ionize in solution, and most bases _____ in solution.


ionize

disperse

dissociate

vaporize

Answers

The correct option is DISSOCIATE.
Acids ionize in water producing hydrogen ions while bases dissociates in solutions. Strong acids ionize completely in water while weak acids only ionize partially. Strong bases dissociate completely in solution while weak bases are typically undergo partial dissociation.

When metals form ions, they tend to do so by 1. losing electrons and forming positive ions 2. losing electrons and forming negative ions 3. gaining electrons and forming positive ions 4. gaining electrons and forming negative ions?

Answers

They lose electrons forming positive ions

Answer:

1. losing electrons and forming positive ions

Explanation:

Metals form ions by losing electrons. They do it because they have few electrons in their outermost shells. So rather than accept more electrons, it is much more feasible to lose the few electrons and achieve the octet configuration.

With this alone, we know that options 3 and 4 are incorrect.

When metals lose electrons, the type of ion formed is a positive ion because the total number of protons (positive) would be more than the total number of electrons (negative) present.

For example in Ca²⁺;

Calcium loses 2 electrons. The charge however shows +2. This is because there are 20 protons and 18 electrons in the ion now, so 20 -18 = +2

The correct option is option 1. losing electrons and forming positive ions.

In the science lab, students are testing solutions as acids or bases. the ph level of solution "x" was determined to be an 8. what is solution "x"?

Answers

Solution 'X" would be a base. 

The wall of the flask is periodically rinsed with the previously boiled deionized water from the wash bottle. does this titrimetric technique result in an increase, a decrease, or have no effect on the reported acetic acid in the vinegar

Answers

This technique has no effect on the percent of acetic acid in the vinegar, as deionized water does not affect the number balance of H+ hydronium ions or OH- hydroxide ions. This is done just to make the endpoint reading easier.

Write the element symbol for the element with the abbreviated electron configuration [ne]3s23p2.

Answers

The answer is Si (Silicon)

Where are the alkali metals, the alkaline earth metals, the halogens, and the noble gases located on the periodic table?

Answers

The Alkali Metals- (Group 1A)can be found (excluding hydrogen) in the first column of the periodic table. They all have 1 valence electron and tend to form +1 cations when forming Ionic bonds with non metals. 

The Alkali Earth Metals: (Group 2A) can be found in the second column/group on the periodic table. These elements form +2 positively charged cations when forming Ionic bonds with non metals. They also all have 2 valence electrons. 

The Halogens: are the elements that make up the second to last group on the periodic table. These elements include Chlorine, Fluorine, Bromine, Iodine, and Astatine. These elements have 7 valence electrons. The usually form a -1 charged anion when forming ionic bonds with metals. 

The Noble gases: the very last group on the periodic table. All these elements have 8 valance electrons. Due to the octet rule these atoms are already very stable and rarely react with other elements. 

The alkali metal, the alkaline earth metals, the halogens, and the noble gases are located in the periodic table in group 1, group 2, group 17, and group 18 respectively.

What is the periodic table?

The periodic table is a tabular display of chemical elements. The periodic table is a graphic formulation of the periodic law, which states that the physical and chemical properties of the chemical elements are the periodic functions of their atomic numbers.

The table is arranged in horizontal rows called periods, and the vertical columns are called groups. Elements in the same column group of the periodic table show identical chemical characteristics.

The nonmetallic character increases from left to right in a period, and from down to up across a group, and the metallic character increases in the opposite direction.

The alkali metal and the alkaline earth metals are the elements of the s-block while the halogens and the noble gases are placed in the p-block.

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how many moles are in 68.4 grams of neon?

Answers

The answer is 3.39 mol

What physical properties would a pencil lead have

Answers

Some physical properties that a pencil would have is, color, density, texture, hardness (in this case the lead is soft). phase (liquid,solid gas), shape, size. physical properties describe the look and feel of a substance. I hope this helps

The p block of the periodic table includes the elements in _______.
a. groups 3a through 8a
c. inner transition metals
b. transition metals
d. groups 1a and 2a

Answers

The answer is:  [A]:  "groups 3a through 8a" .
___________________________________________________
(but not including "helium").
___________________________________________________

Consider the chemical equilibrium of the following reaction CH3COOH    CH3COO– (aq) + H+(aq) What will happen to the chemical equilibrium of the solution if CH3COONa is added? The equilibrium will shifts to the right. The equilibrium will shifts to the left. The equilibrium will be unaffected. The equilibrium will be lost.

Answers

Answer: The equilibrium will shifts to the left.

Explanation:

Any change in the equilibrium is studied on the basis of Le-Chatelier's principle.

This principle states that if there is any change in the variables of the reaction, the equilibrium will shift in the direction to minimize the effect.

[tex]CH_3COOH\rightleftharpoons CH_3COO^-+H^+[/tex]

Thus if [tex]CH_3COONa[/tex] is added it will dissociate to give [tex]CH_3COO^-[/tex] and [tex]Na^+[/tex]

[tex]CH_3COONa\rightarrow CH_3COO^-+Na^+[/tex]

Thus as the concentration of [tex]CH_3COO^-[/tex] increases, the equilibrium will shift in a direction where concentration of [tex]CH_3COO_-[/tex] decrease i.e. the dissociation of [tex]CH_3COOH[/tex] will be further depressed i.e the equilibrium will shift to the left.

Answer:

C

Explanation:

Who was the first to state the concept of an atom?

Answers

Democritus was the first

Answer:

The answer would be D. Democritus.

Explanation:

He was the first to state the concept of an atom.

The red line of the hydrogen emission spectrum has a wavelength of 656.1 nm. Calculate the energy of one photon

Answers

The formula we can use here is the Plancks equation:

E = h c / ʎ

where h is Plancks constant = 6.626 × 10-34 m2 kg / s, c is speed of light = 3 x 10^8 m/s and ʎ is wavelength = 656.1 x 10^-9 m

 

Therefore E is:

E = (6.626 × 10-34 m2 kg / s) * (3 x 10^8 m/s) / 656.1 x 10^-9 m

E = 3.03 x 10^-19 J

Final answer:

The energy of one photon of the red line of the hydrogen emission spectrum can be calculated using Planck's equation and it is approximately 3.03 x 10^-19 Joules.

Explanation:

The energy of a photon can be calculated using Planck's equation, E = hv, where 'E' is the energy, 'h' is Planck's constant (6.63 x 10^-34 J.s), and 'v' is the frequency. We can express frequency in terms of speed of light (c) and wavelength (λ) using the equation v = c/λ.

First, convert the wavelength from nm to meters: 656.1 nm = 656.1 x 10^-9 m. Then find the frequency, v = (3.00 x 10^8 m/s) / (656.1 x 10^-9 m) = 4.57 x 10^14 s^-1.

Next, substitute 'v' into Planck's equation to find the energy: E = (6.63 x 10^-34 J.s) x (4.57 x 10^14 s^-1) = 3.03 x 10^-19 J.

Therefore, the energy of one photon of the red line of the hydrogen emission spectrum is approximately 3.03 x 10^-19 Joules.

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Will all cars have roughly the same amount of force available

Answers

No, all cars will not have the same amount of force available to them. The majority of a car's force comes from the engine of the vehicle. All engines do not have the same amount of power in that some have larger amounts of force and some have smaller amounts of force. This will result in cars having different amounts of available force.

A family of elements that has two electrons in its outer energy level is the

Answers

2nd group of the periodic table
alkaline earth metals

00 ml of 0.425 m h2so4 solution is required to completely neutralize 23.9 ml of koh solution. what is the molarity of the koh solution

Answers

00 mL? I believe that you have erroneously pasted the question here.

Anyway, let us continue computing for the molarity of KOH but i will just use a variable “A” for the volume of H2SO4 solution.

 

The complete balanced reaction is:

H2SO4  +  2KOH  -->  K2SO4  +  2H2O

 

We see that 2 moles of KOH is needed for every mole of H2SO4. So calculate the moles of H2SO4.

moles H2SO4 = 0.245 M * (A / 1000) = 2.45x10^-4 A

 

So the number of moles of KOH is:

moles KOH = 2.45x10^-4 A * 2

moles KOH = 4.90x10^-4 A

 

So the molarity of KOH is:

Molarity KOH = 4.90x10^-4 A / (0.0239 L)

Molarity KOH = 0.0205 * A

 

Simply multiply 0.0205 by the correct volume of H2SO4 in ml

A molecule that is composed only of chains and rings of hydrogen and carbon is called a

Answers

A molecule that is composed of carbon and hydrogen is called a hydrocarbon. 

Classify these bonds as ionic, polar covalent, or nonpolar covalent na-f

Answers

An ionic bond is a bond between two ions, one is positive charge and one is negative charge. A polar covalent bond is when 2 electrons are shared between 2 atoms but not in equal strength. A nonpolar covalent bond is when 2 atoms equally share 2 electrons.

Which is a pure substance? A. sugar B. trail mix C. leaf salad D. sugar water

Answers

A. Sugar... Because the others are mixes of things and combinations. Sugar is pure and on its own. 

I hope this helps!

Answer:

A

Explanation:

Sublimation and boiling both happen at the surface of the substance.
a. True
b. False

Answers

This statement is: False

Boiling is vaporization that occurs both below and at the surface of the liquid.
However, evaporation happens at the surface of the substance.

So, if you need to correct this statement, the correction would be:
Sublimation and evaporation happen at the surface of the substance.

What is the Lewis dot structure Ch2Cl2

Answers

Assuming it should be CH2Cl2, 20 total valence electrons

The major portion of an atom’s volume is(based on the gold foil experiment)?

Answers

Empty space as proved by the gold foil experiment

The major portion of an atoms volume is made up of empty space

What element has its 7 valence electrons in energy level 4 in s and p orbitals?

Answers

The answer to your question is the element (Br) because it has 35 in his atomic number.
 1s2/2s2 2p6/ 3s2 3p6/4s2 4p6 3d9. or [Ar] 4s2 2p5 3d10.
i hope that is answering your question.

How many lithium ions are present in 30.0 ml of 0.600 m li2co3 solution?

Answers

Final answer:

To calculate the number of lithium ions, we need to determine the number of moles of Li2CO3 and then multiply it by 2 (since there are 2 lithium ions for every 1 formula unit of Li2CO3). The number of lithium ions is 0.0360 mol.

Explanation:

To determine the number of lithium ions present in the solution, we need to first calculate the number of moles of Li2CO3 using the given concentration and volume. From the formula Li2CO3, we can see that there are 2 lithium ions for every 1 formula unit of Li2CO3. Therefore, we can multiply the number of moles of Li2CO3 by 2 to calculate the number of lithium ions.


First, we need to calculate the number of moles of Li2CO3:

Moles of Li2CO3 = concentration (mol/L) × volume (L)

Moles of Li2CO3 = 0.600 mol/L × 0.0300 L = 0.0180 mol

Since there are 2 lithium ions for every 1 formula unit of Li2CO3:

Number of lithium ions = 2 × moles of Li2CO3 = 2 × 0.0180 mol = 0.0360 mol

Therefore, there are 0.0360 moles of lithium ions present in 30.0 mL of 0.600 M Li2CO3 solution.

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Why is identifying unknown compounds important to chemistry?

Answers

Final answer:

Identifying unknown compounds is crucial in chemistry as it helps determine their composition, structure, and properties. This knowledge is essential for predicting behavior, reactivity, and potential applications of compounds.

Explanation:

Identifying unknown compounds is important to chemistry because it allows scientists to determine the composition, structure, and properties of those compounds. By knowing the elements present in a compound, their relative amounts, and the molecular or empirical formula of the compound, chemists can make predictions about its behavior, reactivity, and potential applications. For example, knowing the composition of a compound can help scientists understand its toxicity, stability, solubility, and potential uses in various industries.

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