腔内激光吸收光谱:能源科学的性能和优势

IF 5 Q2 ENERGY & FUELS
Uri Zamir , Joshua H. Baraban , Peter Fjodorow , Igor Rahinov
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引用次数: 0

摘要

要满足可持续能源经济的需求,就必须对未来燃料和当代燃烧应用的化学过程进行诊断。腔内激光吸收光谱(ICAS)于 1970 年首创,现已发展成为燃烧诊断工具箱中的强大仪器。它之所以具有超高的灵敏度,是因为将吸收器置于宽带激光器的腔内,从而增强了有效吸收路径长度。在这篇综述中,我们将介绍 ICAS 与其他方法的互补优势:对窄带吸收的超高灵敏度、对宽带损耗的免疫力、多路复用检测和(微米级)时间分辨率。我们概述了 ICAS 的基本概念和特点,重点介绍了激光动态机制,其中激光谐振器中的吸收样品产生了著名的朗伯-比尔定律。通过重点介绍长期以来被认为 "难以检测 "的 1CH2 和 HCO 自由基以及 O 原子、C2、NH2、HNO、CN和HCN,以及基于(固定或时间分辨)测量包含CH4、C2H2、CO2、CO、OH和H2O线的多组分光谱矩阵而在冲击管、流动池和火焰中展示的测温和标本应用。我们重点介绍了 ICAS 在气相纳米材料合成方面的贡献(以掺铁火焰原型为例),并讨论了其在喷雾火焰热解和金属粉末燃烧方面的应用前景。最后,我们介绍了基于掺杂铬2+和铁2+的掺钙晶体和掺杂三价镧系元素的氟化物晶体的激光介质的开发进展,这些介质符合(ICAS 特定的)要求,即增益介质必须直接在所需波长范围内发光,因此可以将这项技术扩展到重要的中红外和紫外光谱范围。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Intracavity laser absorption spectroscopy: Performance and advantages for energy science

Meeting the demands of sustainable energy economy requires diagnostics of the chemical processes surrounding future fuels and contemporary combustion applications. Pioneered in 1970, Intracavity Laser Absorption Spectroscopy (ICAS) has evolved to be a powerful instrument in the toolbox of combustion diagnostics. It owes its ultra-high sensitivity to the enhancement of the effective absorption pathlength by placing the absorber inside the cavity of a broadband laser. In this review we introduce the complementary strengths of ICAS to other methods: ultra-high sensitivity to narrowband absorption alongside the immunity to broadband losses, multiplexed detection and (µs-scale)-temporal resolution. We outline the basic concepts and features of ICAS, focusing on the laser dynamics regime where an absorbing sample in the laser resonator yields the well-known Lambert-Beer law. We chart the progress made over the years in visible (dye-jet laser) and near infrared (fiber laser) ICAS speciation in flames, by highlighting case studies where species like long considered "hard-to detect" 1CH2 and HCO radicals, along with O-atoms, C2, NH2, HNO, CN, and HCN were measured, as well as thermometry and speciation applications demonstrated in shock tubes, flow-cells and flames based on (stationary or time-resolved) measurements of multicomponent spectral matrices containing lines of CH4, C2H2, CO2, CO, OH and H2O. We highlight the contributions of ICAS in gas-phase nanomaterial synthesis, exemplified in prototypical iron-doped flames and discuss prospective applications in spray-flame pyrolysis and metal-powder combustion. Finally, we present advances in the development of lasing media based on Cr2+ and Fe2+-doped chalcogenide crystals and fluoride crystals doped with trivalent lanthanides, that meet the (ICAS-specific) requirement associated with the necessity to have a gain media lasing directly in the desired wavelength range, and therefore to expand this technique into the important mid-infrared and ultraviolet spectral ranges.

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