Department of Electrical and Computer Engineering, University of Massachusetts, Amherst, MA, USA.
Department of Microbiology, University of Massachusetts, Amherst, MA, USA.
Nature. 2020 Feb;578(7796):550-554. doi: 10.1038/s41586-020-2010-9. Epub 2020 Feb 17.
Harvesting energy from the environment offers the promise of clean power for self-sustained systems. Known technologies-such as solar cells, thermoelectric devices and mechanical generators-have specific environmental requirements that restrict where they can be deployed and limit their potential for continuous energy production. The ubiquity of atmospheric moisture offers an alternative. However, existing moisture-based energy-harvesting technologies can produce only intermittent, brief (shorter than 50 seconds) bursts of power in the ambient environment, owing to the lack of a sustained conversion mechanism. Here we show that thin-film devices made from nanometre-scale protein wires harvested from the microbe Geobacter sulfurreducens can generate continuous electric power in the ambient environment. The devices produce a sustained voltage of around 0.5 volts across a 7-micrometre-thick film, with a current density of around 17 microamperes per square centimetre. We find the driving force behind this energy generation to be a self-maintained moisture gradient that forms within the film when the film is exposed to the humidity that is naturally present in air. Connecting several devices linearly scales up the voltage and current to power electronics. Our results demonstrate the feasibility of a continuous energy-harvesting strategy that is less restricted by location or environmental conditions than other sustainable approaches.
从环境中获取能源为自给自足的系统提供了清洁电力的前景。已知的技术,如太阳能电池、热电设备和机械发电机,具有特定的环境要求,限制了它们的部署地点,并限制了它们持续发电的潜力。大气湿度的普遍性提供了另一种选择。然而,由于缺乏持续的转换机制,现有的基于湿度的能量收集技术只能在环境中产生间歇性的、短暂的(短于 50 秒)功率脉冲。在这里,我们展示了从微生物 Geobacter sulfurreducens 中提取的纳米级蛋白质线制成的薄膜器件可以在环境中连续产生电力。这些设备在 7 微米厚的薄膜上产生约 0.5 伏特的持续电压,电流密度约为每平方厘米 17 微安。我们发现,这种能量产生的驱动力是当薄膜暴露在空气中自然存在的湿度中时,在薄膜内形成的自我维持的湿度梯度。将几个设备线性连接起来,可以增加电压和电流,为电子设备供电。我们的结果证明了一种连续能量收集策略的可行性,这种策略比其他可持续方法受位置或环境条件的限制更小。