The Electronic Transitions of Molecular Oxygen

Author:   Mikkel Bregnhøj
Publisher:   Springer Nature Switzerland AG
Edition:   1st ed. 2019
ISBN:  

9783030031824


Pages:   151
Publication Date:   31 January 2019
Format:   Hardback
Availability:   Manufactured on demand   Availability explained
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The Electronic Transitions of Molecular Oxygen


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Overview

This book presents the fundamentals and the state of the art of the photophysics of molecular oxygen. The author examines optical transitions between the lowest-lying electronic states in molecular oxygen and how these transitions respond to perturbation, either from an organic molecule or from the plasmon field of a metal nanoparticle. We live on a planet filled with light and oxygen. The interaction between these two components forms the basis of excited state chemistry spanning the fields of synthetic organic chemistry, materials chemistry, molecular biology, and photodynamic treatment of cancer. Still, the fundamental ways in which oxygen is affected by light is an active subject of research and is continually being developed and rationalized. In this book, readers will learn that singlet oxygen, the excited state of oxygen that exhibits unique chemical reactivity, can be selectively made via direct optical excitation of oxygen in a sensitizer-free system. Readers will also discover that this approach can perturb living cells differently depending on the singlet oxygen “dose”.

Full Product Details

Author:   Mikkel Bregnhøj
Publisher:   Springer Nature Switzerland AG
Imprint:   Springer Nature Switzerland AG
Edition:   1st ed. 2019
Weight:   0.454kg
ISBN:  

9783030031824


ISBN 10:   3030031829
Pages:   151
Publication Date:   31 January 2019
Audience:   Professional and scholarly ,  Professional & Vocational
Format:   Hardback
Publisher's Status:   Active
Availability:   Manufactured on demand   Availability explained
We will order this item for you from a manufactured on demand supplier.

Table of Contents

Introduction.- Instrumentation and Experimental Techniques.- Direct O2(X3Σg) à O2(b1Σg+) excitation.- Solvent Effects on the O2(a1Δg) à O2(b1Σg+) transition.- Temperature Effects on the lifetime of O2(a1Δg).- Metal-Enhanced Singlet Oxygen Production.- Concluding Remarks.

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