Switching, amplifying, and chirping diode lasers with current pulses for high bandwidth quantum technologies.

IF 1.7 4区 工程技术 Q3 INSTRUMENTS & INSTRUMENTATION Review of Scientific Instruments Pub Date : 2024-12-01 DOI:10.1063/5.0230870
Gianni Buser
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Abstract

A series of simple and low-cost devices for switching, amplifying, and chirping diode lasers based on current modulation are presented. Direct modulation of diode laser currents is rarely sufficient to establish precise amplitude and phase control over light, as its effects on these parameters are not independent. These devices overcome this limitation by exploiting amplifier saturation and dramatically outperform commonly used external modulators in key figures of merit for quantum technological applications. Semiconductor optical amplifiers operated on either rubidium D line are recast as intensity switches and shown to achieve ON:OFF ratios >106 in as little as 50 ns. Current is switched to a 795 nm wavelength (Rb D1) tapered amplifier to produce optical pulses of few nanosecond duration and peak powers of 3 W at a similar extinction ratio. Fast rf pulses are applied directly to a laser diode to shift its emission frequency by up to 300 MHz in either direction and at a maximum chirp rate of 150 MHz ns-1. Finally, the latter components are combined, yielding a system that produces watt-level optical pulses with arbitrary frequency chirps in the given range and <2% residual intensity variation, all within 65 ns upon asynchronous demand. Such systems have broad application in atomic, molecular, and optical physics and are of particular interest to fast experiments simultaneously requiring high power and low noise, for example, quantum memory experiments with atomic vapors.

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用于高带宽量子技术的电流脉冲开关、放大和啁啾二极管激光器。
提出了一系列简单、低成本的基于电流调制的开关、放大和啁啾二极管激光器器件。二极管激光电流的直接调制很少足以建立对光的精确幅度和相位控制,因为它对这些参数的影响不是独立的。这些器件通过利用放大器饱和克服了这一限制,并在量子技术应用的关键指标上显著优于常用的外部调制器。在铷D线上操作的半导体光放大器被重铸为强度开关,并显示在短短50 ns内实现on:OFF比率bbb106。将电流切换到795 nm波长(Rb D1)的锥形放大器,产生持续时间仅为几纳秒的光脉冲,在相似的消光比下峰值功率为3 W。快速射频脉冲直接应用于激光二极管,在任何方向上移动其发射频率高达300 MHz,最大啁啾率为150 MHz ns-1。最后,将后一种组件组合在一起,产生一个在给定范围内具有任意频率啁啾的瓦级光脉冲的系统
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来源期刊
Review of Scientific Instruments
Review of Scientific Instruments 工程技术-物理:应用
CiteScore
3.00
自引率
12.50%
发文量
758
审稿时长
2.6 months
期刊介绍: Review of Scientific Instruments, is committed to the publication of advances in scientific instruments, apparatuses, and techniques. RSI seeks to meet the needs of engineers and scientists in physics, chemistry, and the life sciences.
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