| Peter Atkins, Julio de Paula, James KeelerPhysical Chemistry2018 (11th) [18] | FOCUS 14 Molecular interactions | TOPIC 14C Liquids 14C.1 Molecular interactions in liquids 14C.2 The liquid–vapour interface 14C.3 Surface films 14C.4 Condensation |
TOPIC 14D Macromolecules 14D.1 Average molar masses 14D.2 The different levels of structure 14D.3 Random coils 14D.4 Mechanical properties 14D.5 Thermal properties |
TOPIC 14E Self-assembly 14E.1 Colloids 14E.2 Micelles and biological membranes |
| FOCUS 19 Processes at solid surfaces | TOPIC 19A An introduction to solid surfaces 19A.1 Surface growth 19A.2 Physisorption and chemisorption 19A.3 Experimental techniques |
TOPIC 19B Adsorption and desorption 19B.1 Adsorption isotherms 19B.2 The rates of adsorption and desorption |
TOPIC 19C Heterogeneous catalysis 19C.1 Mechanisms of heterogeneous catalysis systems 19C.2 Catalytic activity at surfaces |
TOPIC 19D Processes at electrodes 19D.1 The electrode- solution interface 19D.2 The current density at aท electrode 19D.3 Voltammetry 19D.4 Electrolysis 19D.5 Working galvanic cells |
| Ira N. LevinePhysical Chemistry2009 (6th) [19] | Chapter 7 One-Component Phase Equilibrium and Surfaces | 7.6 Surfaces and Nanoparticles 7.7 The Interphase Region 7.8 Curved Interfaces 7.9 Colloids |
| Chapter 15 Transport Processes | 15.3 Viscosity 15.4 Diffusion and Sedimentation |
| Chapter 16 Reaction Kinetics | 16.18 Adsorption of Gases on Solids 16.19 Heterogeneous Catalysis |
| Chapter 23 Solids and Liquids | 23.10 Determination of Surface Structures |
| Robert G. MortimerPhysical Chemistry2008 (3rd) [20] | 5 Phase Equilibrium | 5.5 Surfaces in One-Component Systems The Energy Attributed to a Surface, Surface Tension, The Laplace Equation |
| 5.6 Surfaces in Multicomponent Systems |
| 28 The Structure of Solids, Liquids, and Polymers | 28.10 Nanomaterials |
| McQuarrie, SimonPhysical Chemistry-A Molecular Approach1997 [21] | Chapter 31 Solids and Surface Chemistry | 31-6 A Gas Molecule Can Physisorb or Chemisorb to a Solid Surface 31-7 Isotherms Are Plots of Surface Coverage as a Function of Gas Pressure at Constant Temperature 31-8 The Langmuir Isotherm Can Be Used to Derive Rate Laws for Surface-Catalyzed Gas-Phase Reactions 31-9 The Structure of a Surface is Different from That of a Bulk Solid 31-10 The Reaction Between H2(g) and N2(g) to Make NH3(g) Can Be Surface Catalyzed |
| David W. BallPhysical Chemistry2003, 1st [22] | 22 Surfaces | 22.1 Synopsis 22.2 Liquids: Surface Tension 22.3 Interface Effects 22.4 Surface Films 22.5 Solid Surfaces 22.6 Coverage and Catalysis |