Order, Criticality, and Excitations in the Extended Falicov-Kimball Model. Ejima, S., Kaneko, T., Ohta, Y., & Fehske, H. Physical Review Letters, 112(2):026401, January, 2014. 273
Order, Criticality, and Excitations in the Extended Falicov-Kimball Model [link]Paper  doi  abstract   bibtex   
Using exact numerical techniques, we investigate the nature of excitonic (electron-hole) bound states and the development of exciton coherence in the one-dimensional half-filled extended Falicov-Kimball model. The ground-state phase diagram of the model exhibits, besides band-insulator and staggered orbital ordered phases, an excitonic insulator (EI) with power-law correlations. The criticality of the EI state shows up in the von Neumann entropy. The anomalous spectral function and condensation amplitude provide the binding energy and coherence length of the electron-hole pairs which, on their part, point towards a Coulomb interaction driven crossover from BCS-like electron-hole pairing fluctuations to tightly bound excitons. We show that while a mass imbalance between electrons and holes does not affect the location of the BCS-BEC crossover regime, it favors staggered orbital ordering to the disadvantage of the EI. Within the Bose-Einstein condensation (BEC) regime, the quasiparticle dispersion develops a flat valence-band top, in accord with the experimental finding for Ta2NiSe5.
@article{ejima_order_2014,
	title = {Order, {Criticality}, and {Excitations} in the {Extended} {Falicov}-{Kimball} {Model}},
	volume = {112},
	url = {http://link.aps.org/doi/10.1103/PhysRevLett.112.026401},
	doi = {10.1103/PhysRevLett.112.026401},
	abstract = {Using exact numerical techniques, we investigate the nature of excitonic (electron-hole) bound states and the development of exciton coherence in the one-dimensional half-filled extended Falicov-Kimball model. The ground-state phase diagram of the model exhibits, besides band-insulator and staggered orbital ordered phases, an excitonic insulator (EI) with power-law correlations. The criticality of the EI state shows up in the von Neumann entropy. The anomalous spectral function and condensation amplitude provide the binding energy and coherence length of the electron-hole pairs which, on their part, point towards a Coulomb interaction driven crossover from BCS-like electron-hole pairing fluctuations to tightly bound excitons. We show that while a mass imbalance between electrons and holes does not affect the location of the BCS-BEC crossover regime, it favors staggered orbital ordering to the disadvantage of the EI. Within the Bose-Einstein condensation (BEC) regime, the quasiparticle dispersion develops a flat valence-band top, in accord with the experimental finding for Ta2NiSe5.},
	number = {2},
	urldate = {2015-02-05},
	journal = {Physical Review Letters},
	author = {Ejima, S. and Kaneko, T. and Ohta, Y. and Fehske, H.},
	month = jan,
	year = {2014},
	note = {273},
	pages = {026401},
	file = {APS Snapshot:/home/schlady/.zotero/zotero/za3jlr8i.default/zotero/storage/SUJ6T7HF/PhysRevLett.112.html:text/html;Ejima et al_2014_Order, Criticality, and Excitations in the Extended Falicov-Kimball Model.pdf:/home/schlady/.zotero/zotero/za3jlr8i.default/zotero/storage/UU7ZENG2/Ejima et al_2014_Order, Criticality, and Excitations in the Extended Falicov-Kimball Model.pdf:application/pdf}
}

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