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GaN-Based THz Advanced Quantum Cascade Lasers for Manned and Unmanned Systems

机译:适用于载人和无人系统的基于GaN的THz高级量子级联激光器

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In recent years the use of Unmanned Autonomous Vehicles (UAV) has seen a wider range of applications. However, their applications are restricted due to (a) advanced integrated sensing and processing electronics and (b) limited energy storage or on-board energy generation to name a few. The availability of a wide variety of sensing elements, operating at room temperatures, provides a great degree of flexibility with an extended application domain. Though sensors responding to a variable spectrum of input excitations ranging from (a) chemical, (b) biological, (c) atmospheric, (d) magnetic and (e) visual/IR imaging have been implemented in UAVs, the use of THz as a technology has not been implemented due to the absence of systems operating at room temperature. The integration of multi-phenomenological onboard sensors on small and miniature unmanned air vehicles will dramatically impact the detection and processing of challenging targets, such as humans carrying weapons or wearing suicide bomb vests. Unmanned air vehicles have the potential of flying over crowds of people and quickly discriminating non-threat humans from treat humans. The state of the art in small and miniature UAV's has progressed to vehicles of less than 1 pound in weight but with payloads of only a fraction of a pound. Uncooled IR sensors, such as amorphous silicon and vanadium oxide microbolometers with MRT's of less than 70mK and requiring power of less than 250mW, are available for integration into small UAV's. These sensors are responsive only up to approximately 14 microns and do not favorably compare with THz imaging systems for remotely detecting and classifying concealed weapons and bombs. In the following we propose the use of THz GaN-based QCL operating at room temperature as a possible alternative.
机译:近年来,无人驾驶自动驾驶汽车(UAV)的使用范围越来越广。但是,由于(a)先进的集成感测和处理电子设备以及(b)有限的能量存储或车载能量产生等原因,其应用受到了限制。在室温下运行的多种传感元件的可用性为扩展的应用领域提供了极大的灵活性。尽管在无人机中已经实现了对输入激发的可变光谱(包括(a)化学,(b)生物,(c)大气,(d)磁和(e)视觉/ IR成像)变化的传感器的响应,但使用THz作为由于缺少在室温下运行的系统,因此尚未实施一项技术。在小型和微型无人机上集成多现象车载传感器将极大地影响具有挑战性目标的检测和处理,例如携带武器或穿着自杀炸弹背心的人。无人飞行器具有飞越人群并迅速将无威胁的人与待治疗的人区分开的潜力。小型和微型无人机的最新技术已经发展到重量不足1磅但有效载荷仅为一磅的车辆。未冷却的IR传感器(例如MRT小于70mK且要求功率小于250mW的非晶硅和氧化钒微辐射热计)可集成到小型UAV中。这些传感器仅能响应约14微米的距离,因此无法与太赫兹成像系统相比,无法对隐藏的武器和炸弹进行远程检测和分类。在下文中,我们建议使用在室温下运行的基于THz GaN的QCL作为可能的替代方法。

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