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薛定谔猫态光谱学——分析化学的新前沿。

Schrödinger Cat State Spectroscopy-A New Frontier for Analytical Chemistry.

机构信息

Department of Chemistry, University of Wisconsin-Madison, 1101 University Avenue, Madison, Wisconsin 53706, United States.

出版信息

Anal Chem. 2020 Jul 7;92(13):8638-8643. doi: 10.1021/acs.analchem.0c01662. Epub 2020 Jun 22.

Abstract

The invention of the laser generated great excitement, because its ability to create quantum state coherences could form a new family of coherent spectroscopies that were the optical analogue of multidimensional nuclear magnetic resonance (NMR). The full realization of this promise has not yet been realized, but the pathway forward is clear. The path involves the use of multiple, tunable lasers that create a Schrödinger cat state, where the system is simultaneously in a mixture of vibrational and/or electronic states. The multiplicity of these states confers many advantages for analytical methods: high selectivity from the multiple spectral dimensions, line-narrowing, isolation of spectral features where quantum states are coupled, and spectral decongestion. Now that the feasibility of Schrödinger cat spectroscopy has been demonstrated, the future is open for the development of a new frontier in analytical chemistry that creates a new set of tools for studying the complex systems that form the heart of analytical chemistry.

摘要

激光的发明引起了极大的兴奋,因为它能够产生量子态相干,从而形成一系列新的相干光谱学,这是多维核磁共振(NMR)的光学类似物。然而,这一承诺尚未完全实现,但前进的道路是明确的。这条道路涉及使用多个可调谐激光器来创建薛定谔猫态,其中系统同时处于振动和/或电子态的混合物中。这些状态的多样性为分析方法带来了许多优势:从多个光谱维度中获得高选择性、线宽变窄、量子态耦合的光谱特征的隔离以及光谱去拥挤。现在,薛定谔猫光谱学的可行性已经得到了证明,未来将为分析化学的一个新前沿领域的发展开辟道路,为研究构成分析化学核心的复杂系统创造一套新的工具。

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