Bond patterns and charge-order amplitude in quarter-filled charge-transfer solids
Most quasi-one-dimensional (quasi-1D) quarter-filled organic charge-transfer solids (CTS) with insulating ground states have two thermodynamic transitions: a high-temperature metal-insulator transition followed by a low-temperature magnetic transition. This sequence of transitions can be understood...
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AMER PHYSICAL SOC
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ndltd-arizona.edu-oai-arizona.openrepository.com-10150-6231942017-04-23T03:00:35Z Bond patterns and charge-order amplitude in quarter-filled charge-transfer solids Clay, R. T. Ward, A. B. Gomes, N. Mazumdar, S. Univ Arizona, Dept Phys Univ Arizona, Dept Chem Most quasi-one-dimensional (quasi-1D) quarter-filled organic charge-transfer solids (CTS) with insulating ground states have two thermodynamic transitions: a high-temperature metal-insulator transition followed by a low-temperature magnetic transition. This sequence of transitions can be understood within the 1D Peierlsextended Hubbard (PEH) model. However, in some quasi-1D CTS both transitions occur simultaneously in a direct metal to spin-gapped insulator transition. In this second class of materials the organic stack bond distortion pattern does not follow the pattern of a second dimerization of a dimer lattice. These materials also display charge ordering of a large amplitude below the transition. Using quantum Monte Carlo methods we show that the same PEH model can be used to understand both classes of materials, however, within different parameter regions. We discuss the relevance of our work to experiments on several quarter-filled conductors, focusing in particular on the materials (EDO-TTF) 2X and (DMEDO-TTF) 2X. 2017-03-10 Article Bond patterns and charge-order amplitude in quarter-filled charge-transfer solids 2017, 95 (12) Physical Review B 2469-9950 2469-9969 10.1103/PhysRevB.95.125114 http://hdl.handle.net/10150/623194 http://arizona.openrepository.com/arizona/handle/10150/623194 Physical Review B en https://link.aps.org/doi/10.1103/PhysRevB.95.125114 ©2017 American Physical Society AMER PHYSICAL SOC |
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Most quasi-one-dimensional (quasi-1D) quarter-filled organic charge-transfer solids (CTS) with insulating ground states have two thermodynamic transitions: a high-temperature metal-insulator transition followed by a low-temperature magnetic transition. This sequence of transitions can be understood within the 1D Peierlsextended Hubbard (PEH) model. However, in some quasi-1D CTS both transitions occur simultaneously in a direct metal to spin-gapped insulator transition. In this second class of materials the organic stack bond distortion pattern does not follow the pattern of a second dimerization of a dimer lattice. These materials also display charge ordering of a large amplitude below the transition. Using quantum Monte Carlo methods we show that the same PEH model can be used to understand both classes of materials, however, within different parameter regions. We discuss the relevance of our work to experiments on several quarter-filled conductors, focusing in particular on the materials (EDO-TTF) 2X and (DMEDO-TTF) 2X. |
author2 |
Univ Arizona, Dept Phys |
author_facet |
Univ Arizona, Dept Phys Clay, R. T. Ward, A. B. Gomes, N. Mazumdar, S. |
author |
Clay, R. T. Ward, A. B. Gomes, N. Mazumdar, S. |
spellingShingle |
Clay, R. T. Ward, A. B. Gomes, N. Mazumdar, S. Bond patterns and charge-order amplitude in quarter-filled charge-transfer solids |
author_sort |
Clay, R. T. |
title |
Bond patterns and charge-order amplitude in quarter-filled charge-transfer solids |
title_short |
Bond patterns and charge-order amplitude in quarter-filled charge-transfer solids |
title_full |
Bond patterns and charge-order amplitude in quarter-filled charge-transfer solids |
title_fullStr |
Bond patterns and charge-order amplitude in quarter-filled charge-transfer solids |
title_full_unstemmed |
Bond patterns and charge-order amplitude in quarter-filled charge-transfer solids |
title_sort |
bond patterns and charge-order amplitude in quarter-filled charge-transfer solids |
publisher |
AMER PHYSICAL SOC |
publishDate |
2017 |
url |
http://hdl.handle.net/10150/623194 http://arizona.openrepository.com/arizona/handle/10150/623194 |
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