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BONDING. Atoms are generally found in nature in combination held together by chemical bonds. –A chemical bond is a mutual electrical attraction between.

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Presentation on theme: "BONDING. Atoms are generally found in nature in combination held together by chemical bonds. –A chemical bond is a mutual electrical attraction between."— Presentation transcript:

1 BONDING

2 Atoms are generally found in nature in combination held together by chemical bonds. –A chemical bond is a mutual electrical attraction between the nuclei and valence electrons of different atoms that binds the atoms together. There are two types of chemical bonds: ionic, and covalent. Atoms are generally found in nature in combination held together by chemical bonds. –A chemical bond is a mutual electrical attraction between the nuclei and valence electrons of different atoms that binds the atoms together. There are two types of chemical bonds: ionic, and covalent. Introduction to Bonding

3 What determines the type of bond that forms? –The valence electrons of the two atoms involved are redistributed to the most stable arrangement. –The interaction and rearrangement of the valence electrons determines which type of bond that forms. Before bonding the atoms are at their highest possible potential energy What determines the type of bond that forms? –The valence electrons of the two atoms involved are redistributed to the most stable arrangement. –The interaction and rearrangement of the valence electrons determines which type of bond that forms. Before bonding the atoms are at their highest possible potential energy Introduction to Bonding

4 There are understandings of bond electron interaction –One understanding of the formation of a chemical bond deals with balancing the opposing forces of repulsion and attraction Repulsion occurs between the negative e - clouds of each atom Attraction occurs between the positive nuclei and the negative electron clouds There are understandings of bond electron interaction –One understanding of the formation of a chemical bond deals with balancing the opposing forces of repulsion and attraction Repulsion occurs between the negative e - clouds of each atom Attraction occurs between the positive nuclei and the negative electron clouds Introduction to Bonding

5 When two atoms approach each other closely enough for their electron clouds to begin to overlap –The electrons of one atom begin to repel the electrons of the other atom –And repulsion occurs between the nuclei of the two atoms When two atoms approach each other closely enough for their electron clouds to begin to overlap –The electrons of one atom begin to repel the electrons of the other atom –And repulsion occurs between the nuclei of the two atoms Introduction to Bonding

6 As the optimum distance is achieved that balances these forces, there is a release of potential energy –The atoms vibrate within the window of maximum attraction/minimum repulsion The more energy released the stronger the connecting bond between the atoms As the optimum distance is achieved that balances these forces, there is a release of potential energy –The atoms vibrate within the window of maximum attraction/minimum repulsion The more energy released the stronger the connecting bond between the atoms Introduction to Bonding

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8 Another understanding of the form- ation of a chemical bond between two atoms centers on achieving the most stable arrangement of the atoms’ valence electrons –By rearranging the electrons so that each atom achieves a noble gas-like arrangement of its electrons creates a pair of stable atoms (only occurs when bonded) Another understanding of the form- ation of a chemical bond between two atoms centers on achieving the most stable arrangement of the atoms’ valence electrons –By rearranging the electrons so that each atom achieves a noble gas-like arrangement of its electrons creates a pair of stable atoms (only occurs when bonded) Introduction to Bonding

9 Sometimes to establish this arrange- ment one or more valence electrons are transferred between two atoms –Basis for ionic bonding Sometimes valence electrons are shared between two atoms –Basis for covalent bonding Sometimes to establish this arrange- ment one or more valence electrons are transferred between two atoms –Basis for ionic bonding Sometimes valence electrons are shared between two atoms –Basis for covalent bonding Introduction to Bonding

10 A good predictor for which type of bonding will develop between a set of atoms is the difference in their electronegativities. –Remember, electronegativity is a measure of the attraction an atom has for e - s after developing a bond The more extreme the difference between the two atoms, the less equal the exchange of electrons A good predictor for which type of bonding will develop between a set of atoms is the difference in their electronegativities. –Remember, electronegativity is a measure of the attraction an atom has for e - s after developing a bond The more extreme the difference between the two atoms, the less equal the exchange of electrons Introduction to Bonding

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12 Let’s consider the compound Cesium Fluoride, CsF. –The electronegativity value (EV) for Cs is.70; the EV for F is 4.00. The difference between the two is 3.30, which falls within the scale of ionic character. When the electronegativity difference between two atoms is greater than 2.1 the bond is mostly ionic. Let’s consider the compound Cesium Fluoride, CsF. –The electronegativity value (EV) for Cs is.70; the EV for F is 4.00. The difference between the two is 3.30, which falls within the scale of ionic character. When the electronegativity difference between two atoms is greater than 2.1 the bond is mostly ionic. Introduction to Bonding

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14 The take home lesson on electro- negativity and bonding is this: –The closer together the atoms are on the P.T., the more evenly their e - interact, and are therefore more likely to form a covalent bond –The farther apart they are on the P.T., the less evenly their e - interact, and are therefore more likely to form an ionic bond. The take home lesson on electro- negativity and bonding is this: –The closer together the atoms are on the P.T., the more evenly their e - interact, and are therefore more likely to form a covalent bond –The farther apart they are on the P.T., the less evenly their e - interact, and are therefore more likely to form an ionic bond. Introduction to Bonding metal w/nonmetal = ionic nonmetal w/nonmetal = covalent

15 In a co-valent bond: –The electronegativity difference between the atoms involved is not extreme So the interaction between the involved electrons is more like a sharing relationship –It may not be an equal sharing relationship, but at least the electrons are being “shared”. In a co-valent bond: –The electronegativity difference between the atoms involved is not extreme So the interaction between the involved electrons is more like a sharing relationship –It may not be an equal sharing relationship, but at least the electrons are being “shared”. Introduction to Covalent Bonding

16 Lets look at the molecule Cl 2 Covalent Bonds Cl Shared Electrons Shared Electrons Cl

17 Shared electrons are counted with both atoms Cl Notice 8 e - in each valence shell!!!

18 Cl H H H H Covalent Bonds How about the molecule HCl? (Polar Covalent) shared, but not evenly 2.1 3.0

19 To be stable the two atoms involved in the covalent bond share their electrons in order to achieve the arrangement of a noble gas. So what’s the bottom line?

20 In an ion - ic bond: –The electronegativity difference is extreme, So the atom with the stronger pull doesn’t really share the electron –Instead the electron is essentially transferred from the atom with the least attraction to the atom with the most attraction In an ion - ic bond: –The electronegativity difference is extreme, So the atom with the stronger pull doesn’t really share the electron –Instead the electron is essentially transferred from the atom with the least attraction to the atom with the most attraction Introduction to Ionic Bonding

21 - - - - - - - - - - - + - - - - - - - - - - - - - - - - + - An electron is transferred from the sodium atom to the chlorine atom

22 - - - - - - - - - - + + - - - - - - - - - - - + + - - - - - - - Notice 8 e - in each valence shell!!! Both atoms are happy, they both achieve the electron arrangement of a noble gas. Both atoms are happy, they both achieve the electron arrangement of a noble gas.

23 Very Strong Electrostatic attraction established… IONIC BONDS

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25 To be stable the two atoms involved in the ionic bond will either lose or gain their valence electrons in order to achieve a stable arrangement of electrons. So what’s the bottom line?

26 As we’ve learned so far ionic com- pounds are formed by the transfer of electrons from a metal to a nonmetal The ionic compound is held together by the strong electrostatic attraction between oppositely charged ions. There is a tremendous amount of energy stored in the bonds formed in an ionic compound. As we’ve learned so far ionic com- pounds are formed by the transfer of electrons from a metal to a nonmetal The ionic compound is held together by the strong electrostatic attraction between oppositely charged ions. There is a tremendous amount of energy stored in the bonds formed in an ionic compound. Bond Energies and Bonding

27 It takes a lot of energy (A.K.A. bond energy) to pull the two ions apart once they have established their stable arrangement through bonding Energy can be released or absorbed when ions form —Removing electrons from atoms requires an input of energy —Remember from last chapter this energy is called ionization energy It takes a lot of energy (A.K.A. bond energy) to pull the two ions apart once they have established their stable arrangement through bonding Energy can be released or absorbed when ions form —Removing electrons from atoms requires an input of energy —Remember from last chapter this energy is called ionization energy Bond Energies and Bonding

28 Energy and Ionic Bonding On the other hand adding electrons to atoms releases energy into the environment —Remember this has to do with the atoms affinity for electrons —Sometimes this energy is used to help remove the electron from another atom The ionization energy to remove 1 e - from each atom in a mole of Na atoms is 495.8 kJ On the other hand adding electrons to atoms releases energy into the environment —Remember this has to do with the atoms affinity for electrons —Sometimes this energy is used to help remove the electron from another atom The ionization energy to remove 1 e - from each atom in a mole of Na atoms is 495.8 kJ

29 A mol of Cl atoms releases 348.6 kJ when an e - is added to the atom —Notice that it takes more energy to remove Na’s e - than the amount released from the Cl atoms. Forming an ionic bond is a multi-step process —The final step releases a substantial amount of energy (a.k.a. the driving force) A mol of Cl atoms releases 348.6 kJ when an e - is added to the atom —Notice that it takes more energy to remove Na’s e - than the amount released from the Cl atoms. Forming an ionic bond is a multi-step process —The final step releases a substantial amount of energy (a.k.a. the driving force) Energy and Ionic Bonding

30 At the beginning there is solid sodium and chlorine gas. Na(s) & Cl 2 (g) Crystal Formation ENERGY IN A mol of sodium is converted from a solid to a gas: Na(s) + energy  Na(g)

31 One electron is then removed from each sodium atom of form a sodium cation Na(g) + energy  Na + (g) + e - One electron is then removed from each sodium atom of form a sodium cation Na(g) + energy  Na + (g) + e - ENERGY IN Energy is required to break the bond holding 0.5mol of Cl 2 molecules together to form a mole of chlorine atoms Cl 2 (g) + energy  2Cl(g) Energy is required to break the bond holding 0.5mol of Cl 2 molecules together to form a mole of chlorine atoms Cl 2 (g) + energy  2Cl(g) ENERGY IN

32 The next step involves adding an electron to each chlorine atom to form a chloride anion: Cl(g) + e -  Cl - (g) + energy ENERGY OUT The final step provides the driving force for the reaction. Na + (g) + Cl - (g)  NaCl(s) + energy The final step provides the driving force for the reaction. Na + (g) + Cl - (g)  NaCl(s) + energy ENERGY OUT

33 Energy released in the final step is called the lattice energy —Energy released when the crystal lattice of an ionic solid is formed For NaCl, the lattice energy is 787.5 kJ/mol, which is greater than the input of energy in the previous steps —The lattice energy provides enough energy to allow for the formation of the sodium ion Energy released in the final step is called the lattice energy —Energy released when the crystal lattice of an ionic solid is formed For NaCl, the lattice energy is 787.5 kJ/mol, which is greater than the input of energy in the previous steps —The lattice energy provides enough energy to allow for the formation of the sodium ion Crystal Formation

34 We can use the lattice energy as a method for measuring the strength of the bond in ionic compounds. —The amount of energy necessary to break a bond is called bond energy. This energy is equal to the lattice energy, but —Bond energy moves into the system —Lattice energy moves out of the system We can use the lattice energy as a method for measuring the strength of the bond in ionic compounds. —The amount of energy necessary to break a bond is called bond energy. This energy is equal to the lattice energy, but —Bond energy moves into the system —Lattice energy moves out of the system Crystal Formation

35 +3760.2 -3760.2 MgO +2634.7 -2634.7 CaF 2 +700.1 -700.1 NaI +751.4 -751.4 NaBr +787.5 -787.5 NaCl +759.0 -759.0 LiI +817.9 -817.9 LiBr +861.3 -861.3 LiCl kJ/mol (in) kJ/mol (out) Bond energy Lattice energy Compound

36 END OF THE GOOD STUFF ARE YOU READY TO TRY If you are using this for review of the classroom presentation STOP HERE ARE YOU READY TO TRY If you are using this for review of the classroom presentation STOP HERE

37 In the construction of a crystal lattice, depending on the ions involved there can be small “pores” develop between ions in the ionic crystal. —Some ionic compnds have enough space between the ions that water molecules can get trapped in between the ions Ionic compounds that absorb water into their pores form a special type of ionic compound called a hydrate. In the construction of a crystal lattice, depending on the ions involved there can be small “pores” develop between ions in the ionic crystal. —Some ionic compnds have enough space between the ions that water molecules can get trapped in between the ions Ionic compounds that absorb water into their pores form a special type of ionic compound called a hydrate. Hydrate Formation

38 Hydrates typically have different properties than their dry versions - A.K.A. anhydrides —Anhydrous CuSO 4 is nearly colorless —CuSO 4 5 H 2 O is a bright blue color When Copper (II) Sulfate is fully hydrated there are 5 water molecules present for every Copper ion. —The hydrated name would be Copper (II) Sulfate Pentahydrate Hydrates typically have different properties than their dry versions - A.K.A. anhydrides —Anhydrous CuSO 4 is nearly colorless —CuSO 4 5 H 2 O is a bright blue color When Copper (II) Sulfate is fully hydrated there are 5 water molecules present for every Copper ion. —The hydrated name would be Copper (II) Sulfate Pentahydrate Hydrate Formation

39 Have you ever bought a new purse or camera and found a small packet of crystals labeled – do not eat? —These crystals are there to absorb water that might lead to mildew or mold The formula of a hydrate is X A Y B Z H 2 O (Z is a coefficient indicating how many waters are present per formula unit) Have you ever bought a new purse or camera and found a small packet of crystals labeled – do not eat? —These crystals are there to absorb water that might lead to mildew or mold The formula of a hydrate is X A Y B Z H 2 O (Z is a coefficient indicating how many waters are present per formula unit) Hydrate Formation

40 The FDA requires manufacturers to provide nutritional information on the labels of processed food products. —Dietary guidelines are based on the percent of calories that the average person should consume from fats, carbohydrates, proteins, etc. The FDA requires manufacturers to provide nutritional information on the labels of processed food products. —Dietary guidelines are based on the percent of calories that the average person should consume from fats, carbohydrates, proteins, etc. Percent Composition

41 percent composition in a compnd can be determined in 2 ways —The 1 st is by calculating the percent composition by mass from a chemical formula. —The 2 nd is a lab scenario where an unknown compound is chemically broken up into its individual components and percent compo- sition is determined by analyzing the results. percent composition in a compnd can be determined in 2 ways —The 1 st is by calculating the percent composition by mass from a chemical formula. —The 2 nd is a lab scenario where an unknown compound is chemically broken up into its individual components and percent compo- sition is determined by analyzing the results. Percent Composition

42 What is the percent composition of Hydrogen & Oxygen in Water (H 2 O)? What is the percent composition of Hydrogen & Oxygen in Water (H 2 O)? (21) + (116)= (21) + (116)= 18 g H 2 O 1 st Assume you have a mole of the compound in question, and calculate its molar mass 2 nd Use the MM of each component and the MM of the compound to calculate the percent by mass of each component (21) = 2 g/mol (21) = 2 g/mol H: H: 18 g/mol x 100 = x 100 = 11.1% 11.1% O: O: 100% – 11.1% = 88.9% 100% – 11.1% = 88.9%

43 In this method, the mass of the sample is measured, then the sample is decomposed or separated into the component elements The masses of the component ele- ments are then determined and the percent composition is calculated as before —divide the mass of each element by the total mass of the sample and multiply by 100. In this method, the mass of the sample is measured, then the sample is decomposed or separated into the component elements The masses of the component ele- ments are then determined and the percent composition is calculated as before —divide the mass of each element by the total mass of the sample and multiply by 100. Calculating PC Using Analysis Data

44 Find the percent composition of a compound that contains 1.94g of carbon, 0.48g of Hydrogen, and 2.58g of Sulfur in a 5.0g sample of the compound. Calculate the percents for each component by the equation: (Component Mass/Total Sample Mass) x 100 C: 1.94g/5.0g x 100 = 38.8% H: 0.48g/5.0g x 100 = 9.6% S: 2.58g/5.0g x 100 = 51.6%

45 Empirical Formulas Percent compositions can be used to calculate the a simple chemical formula of a compound, called an empirical formula —Empirical formula is the simplest ratio of the atoms in a compound —Ionic compounds are always written as empirical formulas Percent compositions can be used to calculate the a simple chemical formula of a compound, called an empirical formula —Empirical formula is the simplest ratio of the atoms in a compound —Ionic compounds are always written as empirical formulas

46 Empirical Formulas Procedure for calculating Empirical Formula —convert the percent compositions into moles —compare the mols of each compo- nent to calculate the simplest whole number ratio o divide each amount in moles by the smallest of the mole amounts o This sets up a simple ratio Procedure for calculating Empirical Formula —convert the percent compositions into moles —compare the mols of each compo- nent to calculate the simplest whole number ratio o divide each amount in moles by the smallest of the mole amounts o This sets up a simple ratio

47 Calculate the empirical formula of a compound that is 80.0% Carbon and 20.0% Hydrogen by mass Since we don’t know the original mass of the sample, we can assume a 100 g sample: We have 80 grams of Carbon and 20 grams of Hydrogen We need to calculate the number of moles of each element that we have. We have 80 grams of Carbon and 20 grams of Hydrogen We need to calculate the number of moles of each element that we have.

48 80.0g C 1 mole C 12.01 g C = = 6.66 mol C Calculating Empirical Formulas 20.0g H 1 mole H 1.008 g H = = 19.8 mol H Now we need to calculate the smallest whole number ratio in order to find the empirical formula. Divide each component by the smallest number in moles Now we need to calculate the smallest whole number ratio in order to find the empirical formula. Divide each component by the smallest number in moles 6.66 mol = 1 = 2.97 CH 3

49 Determine the empirical formula of a compound containing 2.644g of Au and 0.476g of Cl. Calculating Empirical Formulas 2.664g Au 1 mol Au 197 g Au =.01352mol Au.476g Cl 1 mol Cl 35.4 g Cl =.01345mol Cl.01345mol = 1 AuCl

50 Molecular Formulas The empirical formula for a compound provides the simplest ratio of the atoms in the compound However, it does not tell you the actual numbers of atoms in each molecule of the compound —For instance the empirical formula for glucose is CH 2 O (1:2:1) —While the molecular formula for glucose is C 6 H 12 O 6 The empirical formula for a compound provides the simplest ratio of the atoms in the compound However, it does not tell you the actual numbers of atoms in each molecule of the compound —For instance the empirical formula for glucose is CH 2 O (1:2:1) —While the molecular formula for glucose is C 6 H 12 O 6

51 A molecular formula indicates the numbers of each atom involved in the the compound —The molecular formula is always a multiple of the empirical formula —To calculate the molecular formula you must have 2 pieces of info. Empirical formula Molar mass of the unknown compound (always given) A molecular formula indicates the numbers of each atom involved in the the compound —The molecular formula is always a multiple of the empirical formula —To calculate the molecular formula you must have 2 pieces of info. Empirical formula Molar mass of the unknown compound (always given) Molecular Formulas

52 Calculating Molecular Formula Find the molecular formula of a compound that contains 56.36 g of O and 54.6 g of P. The molar mass of the compound is 189.5 g/mol. 1 st find the Emp. Formula: 56.36 g O 1 mol O 15.99 g O = 3.525mol O 54.6g P 1 mol P 30.97 g P = 1.763mol P 1.763mol = 1.99 = 1 PO 2

53 PO 2 : (130.97g P)+(215.99g O)= 62.95g MM Given in the problem = 189.5 g/mol = 3.01 Now determine the mass of the empirical formula: Calculating Molecular Formula 189.5 g/mol 62.95g Molecular Formula = 3(PO 2 ) P3O6P3O6 P3O6P3O6

54 One More: A Good 1 Methyl acetate is a solvent commonly used in some paints, inks, and adhesives. Determine the molecular formula for methyl acetate, which has the following chemical analysis: 48.64% C, 8.16% H, and 43.20% O. The Molar Mass of the compound in question is reported as 74g/mol. Methyl acetate is a solvent commonly used in some paints, inks, and adhesives. Determine the molecular formula for methyl acetate, which has the following chemical analysis: 48.64% C, 8.16% H, and 43.20% O. The Molar Mass of the compound in question is reported as 74g/mol. 1 st determine the empirical formula 2 nd determine the molecular formula 1 st determine the empirical formula 2 nd determine the molecular formula

55 48.64g C 8.16g H 12.01 g C 1 mole C = 4.050mol C 1.008 g H 1 mole H = 8.095 mol H 43.20g O 15.99 g O 1 mole O = 2.702 mol O 2.702 mol = 1.50 = 2.99 = 1.00 C 1.5 H 3 O 1 2 2 = C 3 H 6 O 2 = 36+6+32 =74g 74g C3H6O2C3H6O2 C3H6O2C3H6O2


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