activity
20172023
most citedTwo-dimensional non-Hermitian skin effect in an ultracold Fermi gas

96 citations · 257 across the 6 of their papers we have counts for

collaborators

12 papers

cond-mat.mes-hall2023★ 2 cited

Anomalous universal quantum transport in 2D asymptotic quasiperiodic system

Ting-Fung Jeffrey Poon, Yuhao Wan, Yucheng Wang +1

Quasiperiodic systems extend the concept of the Anderson transition to quasi-random and low-dimensional realms and have garnered widespread attention. Here, we propose the asymptot…

cond-mat.str-el2023★ 9 cited

Realization and detection of Kitaev quantum spin liquid with Rydberg atoms

Yi-Hong Chen, Bao-Zong Wang, Ting-Fung Jeffrey Poon +3

The Kitaev chiral spin liquid has captured widespread interest in recent decades because of its intrinsic non-Abelian excitations, yet the experimental realization is challenging.…

cond-mat.quant-gas2023★ 96 cited

Two-dimensional non-Hermitian skin effect in an ultracold Fermi gas

Entong Zhao, Zhiyuan Wang, Chengdong He +6

The concept of non-Hermiticity has expanded the understanding of band topology leading to the emergence of counter-intuitive phenomena. One example is the non-Hermitian skin effect…

cond-mat.quant-gas2023★ 5 cited

Fractional quantum anomalous Hall phase for Raman superarray of Rydberg atoms

Ting-Fung Jeffrey Poon, Xin-Chi Zhou, Bao-Zong Wang +2

Rydberg atom arrays offer promising platforms for quantum simulation of correlated quantum matter and raise great interests. This work proposes a novel stripe-lattice model with Ra…

cond-mat.dis-nn2022★ 96 cited

Exact new mobility edges between critical and localized states

Xin-Chi Zhou, Yongjian Wang, Ting-Fung Jeffrey Poon +2

The disorder systems host three types of fundamental quantum states, known as the extended, localized, and critical states, of which the critical states remain being much less expl…

cond-mat.dis-nn2022★ 49 cited

Quantum phase with coexisting localized, extended, and critical zones

Yucheng Wang, Long Zhang, Wei Sun +2

Conventionally a mobility edge (ME) marks a critical energy that separates two different transport zones where all states are extended and localized, respectively. Here we propose…