中国科学院上海光学精密机械研究所(简称:上海光机所)成立于1964年5月,是我国建立最早、规模最大的激光科学技术专业研究所。发展至今,已形成以探索现代光学重大基础及应用基础前沿、发展大型激光工程技术并开拓激光与光电子高技术应用为重点的综合性研究所。研究...
中国科学院上海光学精密机械研究所(简称:上海光机所)是我国建立最早、规模最大的激光专业研究所,成立于1964年,现已发展成为以探索现代光学重大基础及应用基础前沿研究、发展大型激光工程技术并开拓激光与光电子高技术应用为重点的综合性研究所。重...
上海光机所国际合作工作始终围绕上海光机所的主责主业,以服务重大任务和国家需求为牵引,强化目标导向,注重内外集成协同,加强重大国际合作任务的谋划。坚持“战略布局,需求牵引,技术引领,合作共赢”的原则,基于科技部授予的国家国际科技合作基地及本单位学科技术优势,围绕“一带一路”国家倡议,深化拓展与发达国家实质性合作,夯实海外机构建设,积极培育和发起国际大科学计划,加强国际组织任职推荐,组织相关国际会议等,汇聚各类国际人才,建立以“平台-人才-项目-组织”合作模式,融入全球创新合作网络,助力上海光机所成为国际一流科研机构。上海光机所国际合作一直得到所领导的高度重视,历届所长亲自主管国际合作。1972年,上海光机所接待诺贝尔奖的美籍华裔科学家杨振宁,标志着我所第一次对外开放。2007年,被科技部首批授予“科技部国际科技合作基地”。2016年,科技部首次对全国2006-2008年间认定的113家国际合作基地进行了评估,上海光机所获评“优秀”。2021年,科技部首次对全国719家国际合作基地进行了评估,上海光机所持续获评“ 优秀”。王岐山副主席到上海光机所视察时,对上海光机所近几年取得的系列科技成果,以及重大国际合作项目“中以高功...
作为我国建立最早、规模最大的激光科学技术专业研究所,和首批上海市科普教育基地之一,中国科学院上海光学精密机械研究所(简称:上海光机所)在致力于科技创新的同时,十分重视科普工作。多年来,上海光机所借助科研院所强大的科普资源优势,围绕光学与激光科学技术,积极开展公众开放日、科普讲座、科技课堂、科普作品创...
题目:The Magic Of X3: From Plasma Disk To Multi-Functional Lab-In-Fibre
姓名:Peter R. Herman教授
单位:加拿大多伦多大学
时间:2016年5月30日(周一) 下午2:00
地点:溢智厅
Abstract: The manipulation of femtosecond laser light inside transparent media can be directed on varying interaction pathways of microexplosions, photochemistry, and self-focusing filamentation to open new directions for creating dense memory storage, three-dimensional (3D) optical circuits, 3D microfluidic networks and high-speed scribing tracks. The presentation follows these fundamental interactions towards controlling laser processes in various 3D geometries that enable highly functional and compact devices to form with the benefits of 3D seamless integration in delicate glass fibers through to thin films.
In one approach, strong nonlinear interactions are demonstrated to align with Fabry-Perot interference fringes and generate narrow nano-length scale plasma zones of 20 to 45 nm thickness that follow the predicted /2nfilm fringe spacing in SiNx and SiOx film. Micro-disk explosions are shown to cleave open the film into sub-wavelength internal cavities at single or multiple periodic depths or to eject fractional film segments at controllable depths. This new form of high-resolution patterning is aimed at new directions of writing multilevel micro- or nano-fluidic channels for lab-in-a-film, film coloring, 3D surface patterning, nanofluidics, capacitor trimming, and nano-optic fabrication. This new opportunity holds promise to further improve the functionality of CMOS microelectronics and photonics, photovoltaics, MEMS, LED, lab-on-a-chip devices where thin films are widely deployed during their manufacture.
Femtosceond laser processing is further adapted to write 3D optical circuits within the fiber cladding and present a practical means for coupling light efficiently with the fiber core waveguide. Modification of the core waveguide further enables tuning of the modal properties, enabling multi-mode interferometers to be embedded in-fiber for various applications in power tapping, spectral filtering and polarization tuning. Chemical etching of laser-generated nanogratings are also applied to embed microfluidic channels, micro-optical devices and optical resonator components in arbitrary positions in the fiber. The laser writing overall provides a flexible integration of fiber-cladding photonics and microfluidics on which to build 3D opto-fluidic microsystems in our common base of optical networks through to compact biomedical probes. The approach promises to reduce fabrication and packaging costs and to enable highly functional all-fiber microsystems for optical communications, fiber lasers, and sensing. Examples of integrated approaches in lab-in-a-fiber devices and smart medical catheters are presented.
Biography: Peter R. Herman received the B.Eng. degree (1980) in Engineering Physics at McMaster University. He earned MASc (1982) and PhD (1986) degrees studying lasers and diatomic spectroscopy in the Physics Department at the University of Toronto that followed with a post-doctoral position at the Institute of Laser Engineering in Osaka University, Japan (1987) to the study of laser-plasma physics and x-ray lasers. He joined the Department of Electrical and Computer Engineering at the University of Toronto in 1988 where he holds a full professor position. Professor Herman directs a large and collaborative research group that develops and applies laser technology and advanced beam delivery systems to control and harvest laser interactions in new frontiers of 3-D nanofabrication. Our mantra is: “We begin with light and we end with light devices.” To this end we are inventing new methods for processing internally inside optical materials that carve out highly compact and functional lightwave circuits, microfluidics, optofluidic systems, biophotonic sensors, and smart medical catheters. Our end goals are inventing new manufacturing processes and extending optical device and Lab-on-a-chip concepts towards more compact Lab-in-a-fiber and Lab-in-a-film microsystems. Professor Herman is OSA fellow, holds several patents, spun out one company (FiLaser), and has published over 300 papers in journals and conference proceedings.
所办公室
2016年5月24日
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