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Coherent Phonons in Antimony: An Undergraduate Physical Chemistry Solid-State Ultrafast Laser Spectroscopy Experiment

机译:锑中的相干声子:本科物理化学固态超快激光光谱实验

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Ultrafast laser pump-probe spectroscopy is an important and growing field of physical chemistry that allows the measurement of chemical dynamics on their natural time scales, but undergraduate laboratory courses lack examples of such spectroscopy and the interpretation of the dynamics that occur. Here we develop and implement an ultrafast pump-probe spectroscopy experiment for the undergraduate physical chemistry laboratory course at the University of California Berkeley. The goal of the experiment is to expose students to concepts in solid-state chemistry and ultrafast spectroscopy via classic coherent phonon dynamics principles developed by researchers over multiple decades. The experiment utilizes a modern high-repetition-rate 800 nm femtosecond Ti:sap-phire laser, split pulses with a variable time delay, and sensitive detection of transient reflectivity signals using the lock-in technique. The experiment involves minimal intervention from students and is therefore easy and safe to implement in the laboratory. Students first perform an intensity autocorrelation measurement on the femtosecond laser pulses to obtain their temporal duration. Then, students measure the pump-probe reflectivity of a single-crystal antimony sample to determine the period of coherent phonon oscillations initiated by an ultrafast pulse excitation, which is analyzed by fitting to a sine wave. Students who completed the experiment in-person obtained good experimental results, and students who took the course remotely due to the COVID-19 pandemic were provided with the data they would have obtained during the experiment to analyze. Evaluation of student written and oral reports reveals that the learning goals were met, and that students gained an appreciation for the field of ultrafast laser-induced chemistry.
机译:超快激光泵浦探针光谱学是物理化学中一个重要且不断发展的领域,它允许在其自然时间尺度上测量化学动力学,但本科实验课程缺乏此类光谱学的例子和对发生的动力学的解释。在这里,我们为加州大学伯克利分校的本科物理化学实验课程开发并实施了超快泵浦探针光谱实验。该实验的目的是通过研究人员几十年来开发的经典相干声子动力学原理,让学生了解固态化学和超快光谱学的概念。该实验利用现代高重复频率 800 nm 飞秒 Ti:sap-phire 激光器、具有可变时间延迟的分离脉冲,并使用锁相技术灵敏地检测瞬态反射率信号。该实验涉及学生最少的干预,因此在实验室中实施既简单又安全。学生首先对飞秒激光脉冲进行强度自相关测量,以获得其时间持续时间。然后,学生测量单晶锑样品的泵浦探针反射率,以确定由超快脉冲激发引发的相干声子振荡周期,并通过拟合正弦波进行分析。亲自完成实验的学生获得了良好的实验结果,而由于 COVID-19 大流行而远程参加课程的学生获得了他们在实验期间获得的数据以供分析。对学生书面和口头报告的评估表明,学习目标已实现,并且学生对超快激光诱导化学领域有了了解。

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