activity
20202026
most citedOptimal three-state field-free molecular orientation with terahertz pulses

37 citations · 38 across the 5 of their papers we have counts for

collaborators

7 papers

quant-ph2026

Universal qutrit control in asymmetric-top molecules

Qian-Qian Hong, Zhi-Jian Zheng, Zhe-Jun Zhang +2

We present a theoretical framework for universal single-qutrit control in asymmetric-top molecules, advancing molecular quantum information processing. In this approach, the qutrit…

quant-ph2026

Analytical two-pulse control of universal single-qubit gates in rotational ultracold NaCs molecules

Qi Chen, Hao-Xuan Luo, Jin-Kang Guo +3

Complex control protocols and sensitivity to experimental imperfections have limited the practical implementation of quantum gate operations. Here, we present an analytical framewo…

quant-ph2025

Precise quantum control of unidirectional field-free molecular orientation

Qian-Qian Hong, Zhe-Jun Zhang, Chuan-Cun Shu +3

The capability to control molecular rotation for field-free orientation, which arranges molecules in specific spatial directions without external fields, is crucial in physics, che…

quant-ph2025

Precise Quantum Control of Molecular Rotation Toward a Desired Orientation

Qian-Qian Hong, Daoyi Dong, Niels E. Henriksen +3

The lack of a direct map between control fields and desired control objectives poses a significant challenge in applying quantum control theory to quantum technologies. Here, we pr…

quant-ph202137 cited

Optimal three-state field-free molecular orientation with terahertz pulses

Qian-Qian Hong, Li-Bao Fan, Chuan-Cun Shu +1

We present a combined analytical and numerical investigation to show how an optimal control field can be designed to generate maximum field-free orientation of molecules for three…

cond-mat.mes-hall20201 cited

Superscreening by a Retroreflected Hole Backflow in Tomographic Electron Fluids

Qiantan Hong, Margarita Davydova, Patrick J Ledwith +1

Electron hydrodynamics gives rise to surprising correlated behaviors in which electrons "cooperate" to quench dissipation and reduce the electric fields needed to sustain the flow.…