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A surface-display biohybrid approach to light-driven hydrogen production in air

机译:表面显示生物混合方法在空气中以光驱动制氢

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摘要

Solar-to-chemical production by artificial and bioinspired photosynthetic systems is of tremendous interest to help solve current global energy and environmental problems. We developed a bioinorganic hybrid system for photocatalytic hydrogen production under aerobic conditions by combining light-harvesting semiconductors, hydrogenase catalysis, and self-aggregation of whole bacterial cells. We induced hydrogen production via self-photosynthesis in engineered Escherichia coli cells, which were originally designed for bioremediation, with in situ biosynthesis of biocompatible cadmium sulfide nanoparticles using a surface-display system. We also introduced a biomimetic silica encapsulation strategy into the engineered E. coli cells, enabling this hybrid system to continuously produce hydrogen for 96 hours, even under natural aerobic conditions. This biohybrid catalytic approach may serve as a general strategy for solar-to-chemical production.
机译:通过人工和生物启发的光合作用系统进行太阳能生产,对解决当前的全球能源和环境问题具有极大的兴趣。通过结合光收集半导体,氢化酶催化和整个细菌细胞的自聚集,我们开发了一种有氧条件下光催化制氢的生物无机杂化系统。我们通过最初设计用于生物修复的工程化大肠杆菌细胞中的自我光合作用诱导了氢的产生,并使用表面展示系统原位生物合成了生物相容性硫化镉纳米颗粒。我们还向工程化的大肠杆菌细胞中引入了仿生二氧化硅封装策略,即使在自然有氧条件下,该混合系统也能够连续产生96小时的氢气。这种生物杂交催化方法可以用作太阳能生产的一般策略。

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