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Published on: June 8, 2018
Coherent Spatial Control of Wave Packet Dynamics on Quantum Lattices
Ilia Tutunnikov1, Chern Chuang2, Jianshu Cao1
1Department of Chemistry, Massachusetts Institute of Technology, 77 Massachusetts Avenue, Cambridge, Massachusetts 02139, United States.
Noise can surprisingly boost wave packet spread in quantum lattices, enhancing quantum material and information science applications. This study reveals how spatial coherence and initial state properties influence diffusion dynamics under stochastic noise.
Area of Science:
- Quantum physics
- Condensed matter physics
- Quantum information science
Background:
- Quantum lattices are fundamental to quantum materials and information science.
- Advanced experimental methods enable precise observation of wave packet dynamics.
Purpose of the Study:
- To analytically investigate wave packet diffusivity and diffusion length on quantum lattices with noise.
- To understand the impact of spatial coherence and initial state properties on quantum transport.
Main Methods:
- Analytical study of wave packet dynamics.
- Analysis of tight-binding quantum lattices under stochastic noise.
- Investigation of diffusivity and diffusion length for various initial states.
Main Results:
- Noise can enhance transient diffusivity and diffusion length for spatially extended states.
- High-momentum states spread faster than localized states, showing noise-induced diffusivity peaks.
- Differences in spread between extended and localized states exhibit universal dependence on initial width.
Conclusions:
- Spatial coherence is critical for wave packet dynamics on quantum lattices.
- Noise can be leveraged to control quantum transport phenomena.
- Findings have implications for designing quantum materials and advancing quantum technologies.
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