Magnetothermodynamics of α‐NiSO4·6H2O. III. Derivation of Spin‐Hamiltonian–Molecular‐Field Parameters from Experimental Data
Author:
Publisher
AIP Publishing
Subject
Physical and Theoretical Chemistry,General Physics and Astronomy
Link
http://aip.scitation.org/doi/pdf/10.1063/1.1669770
Reference8 articles.
1. Magnetothermodynamics of α‐NiSO4·6H2O. I. Heat Capacity, Entropy, Magnetic Moment, and Internal Energy, from 0.4° to 4.2°K, with Fields 0–90 kG along the c Axis
2. Magnetothermodynamics of Single‐Crystal CuSO4·5H2O. II. Fields ‖ to the α‐Magnetic Axis. Thermodynamic Temperature and Heat Capacity without Heat Introduction below 0.4°K. Calorimetric Heat Capacity from 0.4°–4.2°K with Fields of 1 and 3 kG
3. Heat Capacity of α‐NiSO4·6H2O between 1 and 20°K. Electronic Energy Levels of the Ni++Ion
4. Magnetic Properties of NiSO4·7H2O and α-NiSO4·6H2O at Low Temperatures
5. Influence of Crystalline Fields on the Susceptibilities of Salts of Paramagnetic Ions. II. The Iron Group, Especially Ni, Cr and Co
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1. Crystal structures of NiSO4·9H2O and NiSO4·8H2O: magnetic properties, stability with respect to morenosite (NiSO4·7H2O), the solid-solution series (MgxNi1−x)SO4·9H2O;Physics and Chemistry of Minerals;2018-02-23
2. Reinvestigation of the MII (M = Ni, Co)/TetraThiafulvaleneTetraCarboxylate System Using High-Throughput Methods: Isolation of a Molecular Complex and Its Single-Crystal-to-Single-Crystal Transformation to a Two-Dimensional Coordination Polymer;Inorganic Chemistry;2010-10-22
3. Zero-field splitting in metal complexes;Coordination Chemistry Reviews;2004-05
4. Temperature dependence of the elastic constants of α‐NiSO4⋅6H2O;The Journal of Chemical Physics;1982-07-15
5. Electron-paramagnetic-resonance spectra of ions substituted into transition-metal ion lattices;Physical Review B;1976-02-01
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