Prof. Axel Scherer
Bernard A. Neches Professor of EE, AP and Physics at Caltech
SPIE Involvement:
Conference Chair | Editor | Author | Instructor
Publications (45)

Proceedings Article | 1 May 2023 Presentation + Paper
Scott Lewis, Hayden Alty, Michaela Vockenhuber, Guy DeRose, Dimitrios Kazazis, Grigore Timco, James Mann, Paul Winpenny, Axel Scherer, Yasin Ekinci, Richard Winpenny
Proceedings Volume 12498, 124980X (2023) https://doi.org/10.1117/12.2658324
KEYWORDS: Extreme ultraviolet lithography, Etching, Electron beam lithography, Monte Carlo methods, Electron beams, Mercury, Silicon, Molecules, Dry etching

SPIE Journal Paper | 2 June 2022
Scott Lewis, Hayden Alty, Michaela Vockenhuber, Guy DeRose, Antonio Fernandez Mato, Dimitrios Kazazis, Paul Winpenny, Richard Grindell, Grigore Timco, Axel Scherer, Yasin Ekinci, Richard E. Winpenny
JM3, Vol. 21, Issue 04, 041404, (June 2022) https://doi.org/10.1117/12.10.1117/1.JMM.21.4.041404
KEYWORDS: Extreme ultraviolet lithography, Selenium, Electron beam lithography, Monte Carlo methods, Metals, Mercury, Molecules, Chemical species, Photomicroscopy, Absorption

Proceedings Article | 3 October 2018 Paper
Scott Lewis, Guy DeRose, Hayden Alty, Matthew Hunt, Jarvis Li, Alex Werthiem, Trevor Fowler, Sang Kook Lee, Christopher Muryn, Grigore Timco, Axel Scherer, Stephen Yeates, Richard Winpenny
Proceedings Volume 10810, 108100N (2018) https://doi.org/10.1117/12.2501808
KEYWORDS: Chromium, Silicon, Etching, Molecules, Scattering, Nanostructures, Monte Carlo methods, Photomasks, Extreme ultraviolet lithography, Electron beam lithography

SPIE Journal Paper | 19 December 2016 Open Access
JBO, Vol. 21, Issue 12, 127004, (December 2016) https://doi.org/10.1117/12.10.1117/1.JBO.21.12.127004
KEYWORDS: Silicon, Photovoltaics, Biomedical optics, Metals, Tissue optics, CMOS technology, Optoelectronics, Absorption, Electronics, Photodiodes

SPIE Journal Paper | 25 September 2015 Open Access
Muhammad Mujeeb-U-Rahman, Dvin Adalian, Chieh-Feng Chang, Axel Scherer
JBO, Vol. 20, Issue 09, 095012, (September 2015) https://doi.org/10.1117/12.10.1117/1.JBO.20.9.095012
KEYWORDS: Diodes, Vertical cavity surface emitting lasers, Photovoltaics, Optical communications, Skin, Wireless communications, Telecommunications, Biomedical optics, Scattering, Tissue optics

Showing 5 of 45 publications
Proceedings Volume Editor (24)

Showing 5 of 24 publications
Conference Committee Involvement (27)
Photonic and Phononic Properties of Engineered Nanostructures XV
25 January 2025 | San Francisco, California, United States
Photonic and Phononic Properties of Engineered Nanostructures XIV
29 January 2024 | San Francisco, California, United States
Photonic and Phononic Properties of Engineered Nanostructures XIII
30 January 2023 | San Francisco, California, United States
Photonic and Phononic Properties of Engineered Nanostructures XII
24 January 2022 | San Francisco, California, United States
Photonic and Phononic Properties of Engineered Nanostructures XI
6 March 2021 | Online Only, California, United States
Showing 5 of 27 Conference Committees
Course Instructor
SC742: Nano-Photonics: Physics and Techniques
This short course will start with an introduction to photonic crystals, photonic crystal nanocavities, and lasers fabricated in thin semiconductor slabs containing quantum wells. The applications of high Q cavities containing single quantum dots and the demonstration of strong coupling between cavities and light emitters will be described for quantum information processing. This will be followed by a description of the integration opportunities of photonic crystal cavities with vertical cavity surface emitting lasers. The short course will also cover photonic crystal waveguides, dispersion control in photonic crystals and the opportunities of super-prisms and the challenges of coupling into photonic crystals from conventional index guided waveguides. Finally, a comparison will be made between photonic crystal geometries and conventional high index optics, and the applications of photonic crystal and nanophotonic devices in chemical and biological sensors will be outlined. At the end of the short course, surface plasmon enhanced light emitters and waveguides will be introduced, and their applications in highly efficient solid-state light emitters will be summarized.
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