大发888游戏平台-大发888真钱_百家乐平玩法官方网址_全讯网3344555.com (中国)·官方网站

基于干涉型擴(kuò)散波光譜學(xué)的人腦血液流量監(jiān)測(cè)

來源: 光學(xué)與電子科技學(xué)院 作者:張傳亮 添加日期:2018-06-12 08:37:09 閱讀次數(shù):

       Interferometric diffusing-wave spectroscopy for blood flow monitoring of the human brain
  (基于干涉型擴(kuò)散波光譜學(xué)的人腦血液流量監(jiān)測(cè))
  報(bào)告時(shí)間:2018年6月19日(星期二)上午10:00
  報(bào)告地點(diǎn):賽博南樓403-1會(huì)議室
  報(bào)告人:周文俊博士(美國加州大學(xué)戴維斯分校)
  報(bào)告內(nèi)容簡(jiǎn)介:
  Though cerebral blood flow (CBF) is a target parameter in neurocritical care, a non-invasive and continuous CBF monitor has remained elusive. Conventional imaging modalities such as Magnetic Resonance Imaging (MRI) and Computed Tomography (CT) are impractical for continuous monitoring, while Transcranial Doppler (TCD) Ultrasound measures velocity, not flow, and can be technically challenging. Near-infrared light technologies to measure CBF in adult humans face a unique challenge; they must sense light fluxes that are both coherent and very weak, returning from deep beneath the surface. The most successful optical CBF technology for the human brain, Diffuse Correlation Spectroscopy (DCS), uses one or more single/few mode photon counting channels, making DCS systems either expensive, or restricted in terms of speed and photon counts. Here, we reduce cost and improve performance by liberating optical CBF monitors from the expense and complexity of photon counting. The fundamental innovation is an optical “trick” known as interferometry, where the weak optical field returning from the brain is boosted by a strong reference field. This enables us to replace photon counting detectors with inexpensive pixels on a CMOS camera, in a method called interferometric Diffusing Wave Spectroscopy (iDWS). We discuss the implications of this paradigm shift for CBF monitoring and the field of diffuse optics in general.
  報(bào)告人簡(jiǎn)介:
  Dr. Wenjun Zhou received a B.Sc. degree in Science and Technology of Optical Information in 2008 and an M.Sc degree in Optical Engineering in 2011, both from China Jiliang University. In 2010, he worked as a Visiting Project Officer in School of Chemical and Biomedical Engineering in Nanyang Technological University, Singapore.  In 2015, he received a Ph.D. degree under the supervision of Prof. Jacques Albert in the Advanced Photonic Components Group in Carleton University, Canada.  He was awarded the Chinese Government Award for Outstanding Self-Financed Students Abroad in 2013 and the Senate Medal for Outstanding Academic Achievement of Carleton University in 2015.  Since 2016, he is working with Prof. Vivek J. Srinivasan as a postdoctoral fellow in the Department of Biomedical Engineering in University of California Davis.  His main research interests include interferometric diffusing-wave spectroscopy of the human brain, optical fiber sensors, fiber Bragg gratings, ultrathin gold film, and surface plasmon resonance sensors. He has published 22 papers in Optica, Laser & Photonics Reviews, Optics Letters, Optics Express and so on (14 papers with first or co-first author, and h-index of 14). 

光電學(xué)院
2018年6月11日

分享至:
万山特区| 大发888娱乐场下载 游戏平台| 网上百家乐分析软件| 大发888娱乐城3403| 赌百家乐官网的计划跟策略| 全讯网高手世家| 狮威百家乐官网娱乐| 大发888游戏是真的么| 如何看百家乐官网的玩法技巧和规则 | 元游棋牌官网| 百家乐是骗人的| 足球百家乐网上投注| 太阳城百家乐| 蓝盾百家乐打法| 金城百家乐官网平台| 威尼斯人娱乐城代理加盟| 百家乐官网的各种打法| 威尼斯人娱乐城好不好| 一共33楼24楼风水怎么说| 佛学| 街机水果机游戏下载| 做生意门口怎么摆放| 百家乐官网注册下注平台| 大发888娱乐成| 关于百家乐切入点| 7人百家乐官网桌布| 好运来百家乐的玩法技巧和规则 | 财富百家乐的玩法技巧和规则| 唐朝百家乐官网的玩法技巧和规则 | 百家乐官网最新的投注方法| 澳门顶级赌场国际| 云鼎百家乐作弊| 缅甸百家乐官网博彩真假| 菲律宾太阳网| 新2百家乐官网娱乐城| 娱乐城开户送38体验金| 百家乐赢钱面面观| 合肥百家乐官网赌博机| 桓仁| 百家乐官网网络赌城| 百家乐官网风云论坛|