Optical Tweezers: Methods and Applications
Editat de Miles J. Padgett, Justin Molloy, David McGloinen Limba Engleză Paperback – 23 sep 2019
Each section is introduced by a brief commentary, setting the papers into their historical and contemporary contexts. The first two sections explore the pioneering work of Arthur Ashkin and the use of optical tweezers in biological systems. The book then discusses the extensive use of optical tweezers for the measurement of picoNewton forces and examines various approaches for modeling forces within optical tweezers. The next parts explain how optical tweezers are used in colloid science, how to convert optical tweezers into optical spanners, and how spatial light modulators create holographic tweezers. The book concludes with a section on emerging applications of optical tweezers in microfluidic systems.
With contributions from some of the best in the field, this compendium presents important historical and current developments of optical tweezers in a range of scientific areas, from the manipulation of bacteria to the treatment of DNA.
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Specificații
ISBN-13: 9780367383930
ISBN-10: 0367383934
Pagini: 508
Dimensiuni: 210 x 280 mm
Greutate: 1.48 kg
Ediția:1
Editura: CRC Press
Colecția Chapman and Hall/CRC
ISBN-10: 0367383934
Pagini: 508
Dimensiuni: 210 x 280 mm
Greutate: 1.48 kg
Ediția:1
Editura: CRC Press
Colecția Chapman and Hall/CRC
Public țintă
Professional Practice & DevelopmentCuprins
Optical Tweezers: The Early Years. Applications in Biology. Measuring Forces and Motion. Modeling Forces and Torques. Studies in Colloid Science. Optical Spanners. Multitrap and Holographic Optical Tweezers. Applications in Microfluidics.
Notă biografică
Miles J. Padgett, Justin E. Molloy, David McGloin
Descriere
Bringing together many landmark papers on the field, this compendium covers the techniques and applications of optical tweezers. It covers Arthur Ashkin’s initial work on radiation pressure and the immediate progress following his seminal demonstration. Expert contributors explore recent biological, colloidal, and microfluidic applications. They analyze the mechanisms underpinning basic tweezer force and the interaction among many particles held within multiple tweezer systems. In addition, they explain the conversion of optical tweezers into optical spanners as well as the creation of holographic tweezers using spatial light modulators.