Powell Ryan J, White Ryan, Hill Russell T
Institute of Marine and Environmental Technology, University of Maryland Center for Environmental Science, Baltimore, Maryland, United States of America.
Department of Chemistry and Biochemistry, University of Maryland Baltimore County, Baltimore, Maryland, United States of America.
PLoS One. 2014 Jan 22;9(1):e86518. doi: 10.1371/journal.pone.0086518. eCollection 2014.
Generation of renewable energy is one of the grand challenges facing our society. We present a new bio-electric technology driven by chemical gradients generated by photosynthesis and respiration. The system does not require pure cultures nor particular species as it works with the core metabolic principles that define phototrophs and heterotrophs. The biology is interfaced with electrochemistry with an alkaline aluminum oxide cell design. In field trials we show the system is robust and can work with an undefined natural microbial community. Power generated is light and photosynthesis dependent. It achieved a peak power output of 33 watts/m(2) electrode. The design is simple, low cost and works with the biological processes driving the system by removing waste products that can impede growth. This system is a new class of bio-electric device and may have practical implications for algal biofuel production and powering remote sensing devices.
可再生能源的产生是我们社会面临的重大挑战之一。我们提出了一种由光合作用和呼吸作用产生的化学梯度驱动的新型生物电技术。该系统不需要纯培养物,也不需要特定物种,因为它基于定义光合生物和异养生物的核心代谢原理运行。通过碱性氧化铝电池设计,生物学与电化学相结合。在现场试验中,我们表明该系统坚固耐用,能够与未定义的天然微生物群落协同工作。产生的电力依赖于光照和光合作用。它实现了33瓦/平方米电极的峰值功率输出。该设计简单、成本低,通过去除可能阻碍生长的废物来与驱动系统的生物过程协同工作。这个系统是一类新型的生物电装置,可能对藻类生物燃料生产和为遥感设备供电具有实际意义。