个人信息
Personal information
教授 博士生导师 硕士生导师
性别:男
在职信息:在职
所在单位:武汉光电国家研究中心
学历:研究生(博士)毕业
学位:工学博士学位
毕业院校:华中科技大学
学科:光学工程曾获荣誉:
2023 中国光学学会科技创新奖自然科学奖二等奖
1997 获湖北省科技进步二等奖
论文类型:期刊论文
发表刊物:JOURNAL OF PHYSICS D-APPLIED PHYSICS
收录刊物:SCI
卷号:53
期号:50
页面范围:503002 (24pp) 高被引论文
ISSN号:1361-6463
关键字:metamaterials, metadevices, mechanical reconfiguration, active materials
发表时间:2020-09-16
摘要:Metamaterials, as artificially structured materials composed of subwavelength arrays of
resonant unit cells, can exhibit exotic properties beyond those accessible to natural materials.
They were initially proposed for challenging fundamental laws and demonstrating negative
refraction in the microwave regime, and subsequently exploited as a versatile platform to
manipulate electromagnetic waves throughout the spectrum via their extreme scalability. Over
the past decade, research into metamaterials has been extended to a search for real-world
applications, leading to the concept of metadevices, defined as metamaterial-based devices that
can operate in an active manner. Due to their subwavelength scale, metamaterials present
intriguing strategies for active tuning and provide flat, high-efficiency alternatives to
conventional optical systems based on bulky components. In this topical review, we summarize
the development of active metamaterials and metadevices ranging from microwave to visible
wavelengths, including milestones as well as the state of the art. We survey tuning strategies
based on mechanical reconfiguration and incorporation with active materials such as varactor
diodes, semiconductors, liquid crystals, phase change materials, superconductors, and
two-dimensional materials under various external stimuli, and discuss their fascinating
advantages and potential challenges to be confronted. Finally, future prospects together with
several emerging tuning strategies and materials are presented at the end.
备注:高被引论文(70次,2022.3.10号止 源至 Web of Science)