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A miniaturised autonomous sensor based on nanowire materials platform: the SiNAPS mote

机译:基于纳米线材料平台的小型自主传感器:SiNAPS微粒

摘要

A micro-power energy harvesting system based on core(crystalline Si)-shell(amorphous Si) nanowire solar cells together with a nanowire-modified CMOS sensing platform have been developed to be used in a dust-sized autonomous chemical sensor node. The mote (SiNAPS) is augmented by low-power electronics for power management and sensor interfacing, on a chip area of 0.25mm2. Direct charging of the target battery (e.g., NiMH microbattery) is achieved with end-to-end efficiencies up to 90% at AM1.5 illumination and 80% under 100 times reduced intensity. This requires matching the voltages of the photovoltaic module and the battery circumventing maximum power point tracking. Single solar cells show efficiencies up to 10% under AM1.5 illumination and open circuit voltages, Voc, of 450-500mV. To match the battery’s voltage the miniaturised solar cells (~1mm2 area) are connected in series via wire bonding. The chemical sensor platform (mm2 area) is set up to detect hydrogen gas concentration in the low ppm range and over a broad temperature range using a low power sensing interface circuit. Using Telran TZ1053 radio to send one sample measurement of both temperature and H2 concentration every 15 seconds, the average and active power consumption for the SiNAPS mote are less than 350nW and 2.1 μW respectively. Low-power miniaturised chemical sensors of liquid analytes through microfluidic delivery to silicon nanowires are also presented. These components demonstrate the potential of further miniaturization and application of sensor nodes beyond the typical physical sensors, and are enabled by the nanowire materials platform.
机译:基于核(晶体硅)-壳(非晶硅)纳米线太阳能电池以及纳米线修饰的CMOS传感平台的微功率能量收集系统已经开发出来,可用于粉尘大小的自主化学传感器节点。低功耗电子器件增强了芯片(SiNAPS)的功能,可在0.25mm2的芯片面积上进行电源管理和传感器接口。目标电池(例如NiMH微型电池)的直接充电可在AM1.5照明下达到90%的端到端效率,在强度降低100倍的情况下达到80%的端到端效率。这需要使光伏模块和电池的电压匹配,从而避免最大功率点跟踪。单个太阳能电池在AM1.5照明和450-500mV的开路电压Voc下显示出高达10%的效率。为了匹配电池电压,微型太阳能电池(约1mm2面积)通过引线键合串联连接。化学传感器平台(mm2面积)设置为使用低功率传感接口电路来检测低ppm范围和宽温度范围内的氢气浓度。使用Telran TZ1053无线电每15秒发送一次温度和H2浓度的样本测量值,SiNAPS微粒的平均功耗和有功功耗分别小于350nW和2.1μW。还介绍了通过微流体输送到硅纳米线的液体分析物的低功率小型化化学传感器。这些组件展示了超越典型物理传感器的传感器节点进一步小型化和应用的潜力,并由纳米线材料平台实现。

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