Time-resolved experiment of IR-induced anion reaction dynamics

An Sejun, K. Dabin, Kim Sang Kyu
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Abstract

A pump-probe experiment with the picosecond laser system was designed to reveal the vibrational mode-effect on the anion reaction dynamics. Vibrational excitation by IR pulse initiates the reaction of anions, such as autodetachment, electron-transfer, and isomerization. Visible pulse after IR pulse can detach the electron from the reaction product. Reaction rate, yield, energy, and isomer distribution can be obtained from the kinetic energy distribution of detached electron. Anion source, mass selection system, VMI photoelectron spectrometer, and high-intensity mid-IR [1] have been prepared for this IR-Vis pump-probe experiment. To overcome the low density of the ion packet and low absorption cross-section for the IR, we constructed the high-intensity (50~100 uJ) mid-IR optical setup for the picosecond laser system. Using the nonlinear property of the KTA crystal, we obtained mid-IR pulse (3000 ~ 5000 nm) from the difference frequency mixing between 791 nm and near-IR (950 ~ 1050 nm) pulses. 791 nm laser pulse was obtained from the 1 kHz picosecond amplifiers seeded by the Ti:sapphire oscillator. Near-IR pulse was generated from the optical parametric amplifier system pumped by 791nm pulse For the first target system, we planned the time-resolved photoelectron experiment for the nitromethane anion. Electrons can be autodetached by vibrational excitation [2] and we will measure autodetachment rate with our picosecond laser system. By comparing the autodetachment rate for each vibrational mode, we will be able to reveal the mechanism and vibrational mode effect on the autodetachment dynamics of ground state anion.
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红外诱导阴离子反应动力学的时间分辨实验
设计了皮秒激光系统的泵浦-探针实验,揭示了振动模式对阴离子反应动力学的影响。红外脉冲的振动激发引发了阴离子的自剥离、电子转移和异构化反应。一个又一个可见光脉冲可以使电子从反应产物中分离出来。从分离电子的动能分布可以得到反应速率、产率、能量和同分异构体分布。本IR-Vis泵浦探针实验准备了阴离子源、质量选择系统、VMI光电子能谱仪和高强度中红外[1]。为了克服离子包密度低和红外吸收截面小的问题,我们为皮秒激光系统构建了高强度(50~100 uJ)的中红外光学装置。利用KTA晶体的非线性特性,利用791 nm和950 ~ 1050 nm的近红外脉冲差频混合得到了3000 ~ 5000 nm的中红外脉冲。采用钛蓝宝石振荡器,在1 kHz皮秒放大器上获得791 nm的激光脉冲。近红外脉冲由791nm脉冲泵浦的光参量放大器系统产生。对于第一个目标系统,我们计划了硝基甲烷阴离子的时间分辨光电子实验。电子可以通过振动激发自分离[2],我们将用皮秒激光系统测量自分离率。通过比较不同振动模式下的自脱离速率,揭示了基态阴离子自脱离动力学的机理和振动模式的影响。
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