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预告 | 科学前沿报告会(693):光电声成像与量子物理前沿探索
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主讲人: Lihong V. Wang (美国国家工程院院士、美国国家医学院院士、加州理工学院教授)
地点: 物理学院西301思源报告厅
时间: 2026年9月21日(星期一)10:00—11:30
主持 联系人: 肖云峰 (北京大学物理学院教授)


报告题目:

Topic1   Photoacoustic, Light-Speed, and Quantum Imaging/Physics

Topic2   Quantum Imaging and Three Surprising Stern–Gerlach Experiments


报告摘要 

We develop sonic-speed photoacoustic tomography (PAT) to peer deep into biological tissue. PAT offers functional, metabolic, molecular, and histologic imaging across scales from organelles to entire organisms. We also develop light-speed compressed ultrafast photography (CUP), which records up to 219 trillion frames per second, far exceeding the capabilities of commercially available cameras. CUP can capture real-time images of the fastest phenomena in nature, such as light propagation, and can be slowed down to record slower events, such as neural conduction. In parallel, we explore quantum imaging and quantum physics. PAT physically couples pulsed optical excitation with ultrasonic detection. Conventional high-resolution optical imaging of scattering tissue is confined to depths within the optical diffusion limit (~1 mm). PAT overcomes this limit, providing centimeter-scale penetration with high ultrasonic resolution and high optical contrast by sensing molecules. Its broad applications include early cancer detection and brain imaging. With a single exposure, CUP can image transient events on time scales as short as tens of femtoseconds. Like traditional photography, CUP is receive-only and does not require specialized active illumination, unlike many other single-shot ultrafast imagers. CUP can be coupled to front-end optics ranging from microscopes to telescopes, enabling widespread applications in both fundamental and applied sciences, from biology to astrophysics and cosmology. We study quantum entanglement, quantum imaging, and atomic physics. Unlike classical optical imaging, quantum imaging has achieved super-resolution beyond the diffraction limit through coincidence detection. Because photons originate from atoms and molecules, we also investigate atomic physics at the interface between classical and quantum descriptions. For example, we found, perhaps surprisingly, that the Bloch equation, conventionally regarded as classical, yields the von Neumann and Schrödinger equations. We also developed a theory that models the multistage Stern–Gerlach experiment suggested by Heisenberg and Einstein more accurately than existing treatments.


报告人简介:

 Lihong Wang is Bren Professor of Medical and Electrical Engineering at California Institute of Technology. His book entitled “Biomedical Optics” won the Goodman Book Writing Award. He has published 630 peer-reviewed journal articles and delivered 650 keynote/plenary/invited talks. His Google Scholar h-index and citations have reached 171 and 126K, and he is #1 most cited scientist in optics and #4 in nuclear medicine and medical imaging according to Stanford/Elsevier. His laboratory was the first to report functional photoacoustic tomography, 3D photoacoustic microscopy, and CUP (world’s fastest camera). He received the NIH Director’s Pioneer, NIH Director’s Transformative Research, and NIH/NCI Outstanding Investigator awards. He also received the Optica Mees Medal, Optica Feld Award, IEEE Technical Achievement Award, IEEE Biomedical Engineering Award, SPIE Chance Award, and IPPA Senior Prize. He is a Fellow of AAAS, AIMBE, Electromagnetics Academy, IAMBE, IEEE, NAI, Optica, and SPIE. An honorary doctorate was conferred on him by Lund University, Sweden. He was inducted into both National Academies of Engineering and Medicine.

 

主办:

北京大学物理学院

北京大学未来技术学院

北京大学人工微结构和介观物理全国重点实验室

物理学高层次人才培养中心

 

联系人:

那帅   助理教授   13911152288

  • 附件【topic1海报.pdf】已下载
  • 附件【topic2海报.pdf】已下载