数理化科学

基于量子绝热捷径技术的光波导分束器设计

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  • 上海大学理学院, 上海 200444
施解龙(1960—), 男, 副教授, 博士, 研究方向为光波导理论. E-mail: sjlong@staff.shu.edu.cn

收稿日期: 2015-03-24

  网络出版日期: 2016-10-31

基金资助

国家自然科学基金资助项目(11474193, 61176118); 上海市浦江人才计划资助项目(13PJ1403000); 教育部博士点基金资助项目(2013310811003); 上海市高校特聘教授“东方学者”资助项目

Beam splitter in optical waveguides designed by shortcuts to adiabaticity

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  • College of Sciences, Shanghai University, Shanghai 200444, China

Received date: 2015-03-24

  Online published: 2016-10-31

摘要

用于加快量子绝热“慢”过程的量子绝热捷径技术, 已广泛应用于原子、分子和光物理.基于耦合波导的量子光学类比, 利用量子绝热捷径技术设计光学波导的耦合系数与传播常数, 实现快速的光波导分束器件. 通过数值模拟, 并与共振耦合和绝热耦合波导进行比较. 结果表明, 量子绝热捷径技术所设计的光学波导分束器具有长度短、输出稳定性高的优势.

本文引用格式

浦珺慧, 施解龙, 吴仁华, 陈玺 . 基于量子绝热捷径技术的光波导分束器设计[J]. 上海大学学报(自然科学版), 2016 , 22(5) : 545 -551 . DOI: 10.3969/j.issn.1007-2861.2015.02.007

Abstract

Shortcuts to adiabaticity have been proposed to accelerate “slow” adiabatic processes with the applications in atom, molecular and optical physics. Based on the quantum optical analogy of coupled waveguide, the coupling coefficient and propagating constant are designed by using shortcuts to adiabaticity, to realize optical beam splitters in short length. Compared with resonant and adiabatic couplers by numerical simulation, the designed waveguide is demonstrated its advantages on shorter length and high stability.

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