Preface |
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xiii | |
Author |
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xvii | |
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xix | |
Periodic Table of the Elements |
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xxi | |
Introduction: Mathematics and Physics Review |
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xxiii | |
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Chapter 1 Ideal and Real Gas Behavior |
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1 | (24) |
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Introduction to the "First Encounter with Physical Chemistry" |
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1 | (1) |
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Phenomenological Derivation of the Ideal Gas Equation |
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1 | (3) |
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Charles' (Jacques-Alexandre-Cesar Charles) Law |
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4 | (4) |
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8 | (2) |
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Molecular Weight from Gas Density (the Dumas Bulb Method) |
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10 | (1) |
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Dalton's Law of Partial Pressures |
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11 | (2) |
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13 | (5) |
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Supercritical Fluid Chromatography |
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18 | (4) |
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19 | (1) |
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Supercritical Fluid Instrumentation |
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20 | (1) |
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Supercritical Mobile Phase |
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21 | (1) |
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21 | (1) |
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22 | (1) |
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23 | (1) |
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24 | (1) |
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Chapter 2 Viscosity of Laminar Flow |
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25 | (12) |
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25 | (3) |
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28 | (2) |
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30 | (1) |
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Staudinger's Rule for Polymer Molecular Weight |
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31 | (3) |
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34 | (1) |
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35 | (1) |
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35 | (2) |
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Chapter 3 The Kinetic Molecular Theory of Gases |
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37 | (16) |
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37 | (1) |
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Kinetic Assumptions of the Theory of Gases |
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37 | (2) |
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Weighted Averaging: A Very Important Concept |
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39 | (11) |
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50 | (1) |
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51 | (1) |
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51 | (2) |
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Chapter 4 The First Law of Thermodynamics |
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53 | (28) |
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53 | (1) |
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Historical Development of Thermodynamics |
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53 | (1) |
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54 | (1) |
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First Law of Thermodynamics |
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55 | (2) |
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57 | (2) |
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Enthalpy and Heat Capacities |
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59 | (2) |
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61 | (3) |
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Adiabatic Nozzle Expansion Spectroscopy |
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64 | (1) |
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Diesel Engine Compression |
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65 | (2) |
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Calorimetry and Thermochemistry |
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67 | (4) |
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Hess's Law of Heat Summation |
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71 | (1) |
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Standard Heats of Formation at 298.15°K and 1 bar Pressure |
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72 | (1) |
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Temperature Dependence of Reaction Enthalpies |
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73 | (1) |
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74 | (1) |
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Application to ΔH0rxn (T>298.15°K) |
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75 | (3) |
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Other Types of Thermochemistry |
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78 | (1) |
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78 | (1) |
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Key Formulas and Equations |
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78 | (1) |
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79 | (1) |
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Testing, Grading, and Learning? |
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79 | (1) |
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80 | (1) |
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Chapter 5 The Second and Third Laws of Thermodynamics |
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81 | (22) |
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81 | (1) |
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81 | (5) |
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83 | (2) |
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85 | (1) |
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Efficiency of Real Heat Engines |
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86 | (1) |
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87 | (1) |
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Summary of the Second Law of Thermodynamics |
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88 | (1) |
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Eight Basic Equations of Thermodynamics |
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88 | (2) |
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Third Law of Thermodynamics |
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90 | (5) |
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92 | (1) |
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Entropy Changes at T > 298.15°K |
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93 | (1) |
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Trouton's Rule/Observation |
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94 | (1) |
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Simple Statistical Treatment of Liquids and Gases |
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95 | (4) |
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99 | (1) |
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Testing, Grading, and Learning? |
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100 | (1) |
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101 | (1) |
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102 | (1) |
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102 | (1) |
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Chapter 6 Gibbs' Free Energy and Equilibria |
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103 | (30) |
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103 | (3) |
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Temperature Dependence of Equilibrium Constants |
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106 | (1) |
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106 | (2) |
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Vapor Pressure of Liquids |
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108 | (4) |
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112 | (1) |
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113 | (1) |
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113 | (2) |
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115 | (2) |
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(Cp-Cv) for Liquids and Solids |
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117 | (2) |
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Open Systems: Gibbs---Duhem Equation for Partial Molal Volumes |
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119 | (4) |
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Chemical Potential for Open Systems |
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123 | (2) |
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125 | (3) |
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128 | (1) |
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129 | (1) |
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Testing, Grading, and Learning? |
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129 | (1) |
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130 | (1) |
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130 | (3) |
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Chapter 7 Basic Chemical Kinetics |
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133 | (22) |
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133 | (1) |
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133 | (2) |
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Promethium: An Introduction to Nuclear Chemistry |
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135 | (2) |
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Madame Curie and Radioactivity |
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137 | (2) |
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139 | (1) |
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Second-Order Rate Processes: [ A] = [ B] |
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139 | (1) |
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Second-Order Rate Processes: [ A] ≠ [ B] |
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139 | (6) |
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Arrhenius Activation Energy |
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145 | (2) |
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The Classic A → B → C Consecutive First-Order Reaction |
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147 | (3) |
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150 | (3) |
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153 | (1) |
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154 | (1) |
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Chapter 8 More Kinetics and Some Mechanisms |
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155 | (26) |
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155 | (1) |
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Beyond Arrhenius to the Eyring Transition State |
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155 | (4) |
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159 | (2) |
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Graphical---Analytical Method for ΔH‡ and ΔS‡ |
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161 | (2) |
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Summary of Graphical Method Results at T = 25°C |
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163 | (1) |
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Further Consideration of SN1 Solvolysis |
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164 | (1) |
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Chain Reactions and the Steady State |
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165 | (4) |
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Steady-State Example No. 1 H2 + Br2 → 2HBr |
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165 | (2) |
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Steady-State Example No. 2 Thermal Cracking of Acetaldehyde |
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167 | (1) |
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Steady-State Example No. 3 The Lindemann Mechanism |
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168 | (1) |
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169 | (3) |
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Basic Michaelis---Menten Equation |
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171 | (1) |
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Example: A Hypothetical Enzyme |
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172 | (6) |
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Michaelis---Menten with Competitive Inhibitor |
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174 | (2) |
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Michaelis---Menten Summary |
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176 | (2) |
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178 | (1) |
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178 | (1) |
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Testing, Grading, and Learning? |
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179 | (1) |
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180 | (1) |
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180 | (1) |
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Chapter 9 Basic Spectroscopy |
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181 | (32) |
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181 | (1) |
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181 | (3) |
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183 | (1) |
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184 | (5) |
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189 | (1) |
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Preliminary Summary of the Bohr Atom |
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190 | (2) |
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Significance of the Bohr Quantum Number n |
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192 | (1) |
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192 | (1) |
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193 | (3) |
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Forensic/Analytical Use of Auger X-Rays |
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196 | (2) |
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198 | (1) |
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199 | (3) |
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Electronic Absorption Spectroscopy/Spectrophotometry |
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202 | (2) |
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Interpreting Electronic Spectra |
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204 | (5) |
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General Principles of Spectroscopy |
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209 | (1) |
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210 | (1) |
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210 | (1) |
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211 | (2) |
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Chapter 10 Early Experiments in Quantum Physics |
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213 | (20) |
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213 | (1) |
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Stefan---Boltzmann Law: Relating Heat and Light---Part I |
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213 | (1) |
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Blackbody Radiation: Relating Heat and Light---Part II |
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214 | (7) |
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221 | (4) |
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225 | (1) |
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Davisson---Germer Experiment |
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226 | (4) |
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230 | (1) |
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231 | (1) |
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232 | (1) |
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Chapter 11 The Schrodinger Wave Equation |
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233 | (20) |
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233 | (9) |
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Definition of a Commutator |
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242 | (1) |
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Postulates of Quantum Mechanics |
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243 | (1) |
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244 | (3) |
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Comparison of PIB and POR Applications |
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247 | (1) |
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Additional Theorems in Quantum Mechanics |
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247 | (2) |
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249 | (1) |
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250 | (1) |
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251 | (1) |
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252 | (1) |
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Chapter 12 The Quantized Harmonic Oscillator: Vibrational Spectroscopy |
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253 | (24) |
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253 | (2) |
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Harmonic Oscillator Details |
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255 | (3) |
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Harmonic Oscillator Results |
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258 | (4) |
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262 | (2) |
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Isotope Shift in the Vibrational Fundamental Frequency |
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264 | (1) |
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265 | (1) |
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Infrared Dipole Selection Rule |
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265 | (2) |
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3N --- 6 or 3N --- 5 Vibrations? |
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267 | (4) |
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271 | (3) |
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274 | (1) |
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275 | (1) |
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275 | (2) |
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Chapter 13 The Quantized Rigid Rotor and the Vib-Rotor |
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277 | (30) |
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277 | (1) |
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Three-Dimensional Particle-in-a-Box |
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277 | (2) |
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279 | (6) |
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281 | (2) |
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Rigid Rotor Wave Functions |
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283 | (2) |
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285 | (1) |
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285 | (1) |
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286 | (3) |
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Rotational Spectrum of CO |
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289 | (2) |
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Fourier Transform Spectrometry |
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291 | (1) |
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FT-IR Imaging and Microscopy |
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292 | (2) |
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294 | (1) |
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Vib-Rotor Infrared Spectroscopy |
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295 | (7) |
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302 | (1) |
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303 | (1) |
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304 | (1) |
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305 | (2) |
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Chapter 14 The Schrodinger Hydrogen Atom |
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307 | (24) |
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307 | (1) |
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Strategy to Solve the Problem |
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307 | (3) |
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Associated Laguerre Polynomials |
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310 | (1) |
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311 | (5) |
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Pictures of Angular Orbitals |
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316 | (3) |
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Powell Equivalent d-Orbitals |
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319 | (4) |
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323 | (1) |
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Aufbau Principle and the Scaled H Atom |
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323 | (1) |
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Term Symbols and Spin Angular Momentum |
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324 | (1) |
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325 | (1) |
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|L, Sz〉 versus |J, Jz〉 Coupling |
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326 | (2) |
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328 | (1) |
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329 | (1) |
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329 | (2) |
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Chapter 15 Quantum Thermodynamics |
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331 | (14) |
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331 | (2) |
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(Energy) Partition Function |
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333 | (1) |
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Average Translation Energy in One Dimension |
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334 | (1) |
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Average Rotational Energy of a Diatomic Molecule |
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334 | (1) |
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Average Vibrational Energy |
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335 | (2) |
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High-Temperature Limit for Vibrational Heat Capacity |
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337 | (1) |
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Heat Capacity of a Polyatomic Species: Water |
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337 | (2) |
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Combining Partition Functions |
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339 | (1) |
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Statistical Formulas for Other Thermodynamic Functions |
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340 | (1) |
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Statistical Formula for S(T) |
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340 | (1) |
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Sakur---Tetrode Formula for Absolute Entropy of a Gas |
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341 | (2) |
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343 | (1) |
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344 | (1) |
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344 | (1) |
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Chapter 16 Approximate Methods and Linear Algebra |
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345 | (22) |
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345 | (1) |
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Simple First-Order Perturbation Theory |
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345 | (2) |
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Principles of Perturbation Theory |
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347 | (1) |
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348 | (2) |
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Molecular Orbitals and the Secular Equation |
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350 | (2) |
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Chemical Bonds of Ethylene |
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352 | (4) |
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Elementary Linear Algebra |
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356 | (3) |
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Unitary Similarity Diagonalization of a Square Hermitian Matrix |
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359 | (2) |
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Jacobi Algorithm for Diagonalization Using a Computer |
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361 | (1) |
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361 | (1) |
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362 | (1) |
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363 | (1) |
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Testing, Grading, and Learning? |
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363 | (2) |
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365 | (1) |
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366 | (1) |
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Chapter 17 Electronic Structure of Molecules |
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367 | (36) |
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367 | (1) |
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Hartree---Fock---Roothan LCAO Calculations |
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367 | (1) |
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Chemical Effects in Orbital Screening |
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368 | (2) |
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Many-Electron Wave Functions |
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370 | (1) |
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Determinantal Wave Functions for Many-Electron Systems |
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370 | (1) |
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371 | (1) |
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Roothaan's LCAO Hartree---Fock Equation |
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372 | (3) |
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373 | (1) |
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The Hartree---Fock---Roothaan Equations for 2n Electrons |
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374 | (1) |
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Practical Implementation and Examples |
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375 | (17) |
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377 | (1) |
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377 | (15) |
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392 | (1) |
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392 | (1) |
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393 | (6) |
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399 | (1) |
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399 | (2) |
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401 | (2) |
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Chapter 18 Point Group Theory and Electrospray Mass Spectrometry |
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403 | (20) |
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403 | (1) |
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403 | (7) |
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Calculation of Molecular Vibrations |
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410 | (2) |
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Future Development of Electrospray Mass Spectrometry? |
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412 | (2) |
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414 | (5) |
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419 | (1) |
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419 | (1) |
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420 | (3) |
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Chapter 19 Essentials of Nuclear Magnetic Resonance |
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423 | (26) |
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423 | (1) |
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423 | (1) |
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424 | (3) |
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Forensic Application of 1D-NMR |
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427 | (3) |
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Nuclear Magnetic Resonance: Pulse Analysis |
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430 | (2) |
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Rotating Coordinate System |
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432 | (1) |
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Detection of Magnetic Fields |
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433 | (1) |
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434 | (4) |
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Complex Fourier Transform |
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438 | (1) |
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438 | (1) |
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439 | (1) |
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Product Operator COSY Analysis Using Dr. Brown's Automated Software |
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440 | (3) |
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Anatomy of a 2D Experiment |
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443 | (4) |
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447 | (1) |
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447 | (1) |
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447 | (2) |
Appendix A Relation between Legendre and Associated Legendre Polynomials |
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449 | (2) |
Appendix B The Hartree---Fock---Roothaan SCF Equation |
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451 | (6) |
Appendix C Gaussian Lobe Basis Integrals |
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457 | (2) |
Appendix D Spin-Orbit Coupling in the H Atom |
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459 | (6) |
Index |
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465 | (10) |
Use of PCLOBE |
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475 | |