Organic Lasers: Recent Developments on Materials, Device Geometries, and Fabrication Techniques

激光阈值 激光器 纳米技术 制作 有机半导体 平版印刷术 灵活性(工程) 光电子学 工程物理 化学 材料科学 光学 工程类 物理 统计 病理 医学 替代医学 数学
作者
Alexander J. C. Kuehne,Malte C. Gather
出处
期刊:Chemical Reviews [American Chemical Society]
卷期号:116 (21): 12823-12864 被引量:775
标识
DOI:10.1021/acs.chemrev.6b00172
摘要

Organic dyes have been used as gain medium for lasers since the 1960s, long before the advent of today's organic electronic devices. Organic gain materials are highly attractive for lasing due to their chemical tunability and large stimulated emission cross section. While the traditional dye laser has been largely replaced by solid-state lasers, a number of new and miniaturized organic lasers have emerged that hold great potential for lab-on-chip applications, biointegration, low-cost sensing and related areas, which benefit from the unique properties of organic gain materials. On the fundamental level, these include high exciton binding energy, low refractive index (compared to inorganic semiconductors), and ease of spectral and chemical tuning. On a technological level, mechanical flexibility and compatibility with simple processing techniques such as printing, roll-to-roll, self-assembly, and soft-lithography are most relevant. Here, the authors provide a comprehensive review of the developments in the field over the past decade, discussing recent advances in organic gain materials, which are today often based on solid-state organic semiconductors, as well as optical feedback structures, and device fabrication. Recent efforts toward continuous wave operation and electrical pumping of solid-state organic lasers are reviewed, and new device concepts and emerging applications are summarized.
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