Fluorescence lifetimes of Oriented Molecules in Microdroplets

IF 1 Q4 QUANTUM SCIENCE & TECHNOLOGY
M. Barnes, N. Lermer, W. Whitten, J. Ramsey, S. Arnold
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引用次数: 0

Abstract

Over the last several years there has been considerable interest in the properties of atomic resonance fluorescence in an optical cavity with a primary dimension comparable to the relevant transition wavelength.1 In particular, there has been great interest in the realization of strong atom-cavity coupling2 and the suppression of spontaneous emission into "free-space" modes. However, an important but poorly understood issue relevant to low- or zero-threshold condensed phase optical devices is the nonradiative coupling of the emitting species to a thermal bath. Unlike experiments involving dilute atomic beams where the transition is well defined and broadening is negligible, coupling to a thermal bath induces spectral broadening which is usually much larger than the cavity resonance width and may often exceed the cavity mode spacing. Interesting examples of such systems are solvated dyes whose condensed phase dynamics are well known and characterized. To date, several studies have been made on fluorescence properties of solvated dyes in microcavities,3,4,5 however additional complexities such as spatial and orientational averaging have obscured to some extent the connection between radiative and nonradiative processes in such systems. We discuss the observation of spontaneous emission rate modification (both enhancement and apparent suppression) for molecular species in a microcavity where both the molecular position and transition moment orientation are well defined.6 These experiments serve as an interesting test case of molecule-cavity systems in which the emitting species is nonradiatively coupled to a thermal bath.
微滴中定向分子的荧光寿命
在过去的几年中,人们对具有与相关过渡波长相当的初级尺寸的光学腔中的原子共振荧光的性质产生了相当大的兴趣特别是,人们对实现强原子-腔耦合和抑制自发发射到“自由空间”模式产生了极大的兴趣。然而,与低阈值或零阈值凝聚相光学器件相关的一个重要但鲜为人知的问题是发射物质与热浴的非辐射耦合。不像实验涉及的稀释原子束,跃迁是明确的,展宽是可以忽略不计的,耦合到热浴诱导光谱展宽,通常比腔共振宽度大得多,并可能经常超过腔模式间距。这种系统的有趣例子是溶剂化染料,其缩合相动力学是众所周知的。迄今为止,已经对微腔3,4,5中溶剂化染料的荧光特性进行了几项研究,但是额外的复杂性,如空间和取向平均,在某种程度上模糊了这种系统中辐射和非辐射过程之间的联系。我们讨论了在分子位置和跃迁矩取向都明确的微腔中,对分子种类的自发发射率修饰(增强和明显抑制)的观察这些实验作为一个有趣的测试案例的分子腔系统,其中发射物种是非辐射耦合到一个热浴。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
1.80
自引率
22.20%
发文量
43
审稿时长
15 weeks
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