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Tuning the surface Fermi level on p-type gallium nitride nanowires for efficient overall water splitting

机译:调节 p 型氮化镓纳米线上的表面费米能级,以实现有效的总水分解

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Solar water splitting is one of the key steps in artificial photosynthesis for future carbon-neutral, storable and sustainable source of energy. Here we show that one of the major obstacles for achieving efficient and stable overall water splitting over the emerging nanostructured photocatalyst is directly related to the uncontrolled surface charge properties. By tuning the Fermi level on the nonpolar surfaces of gallium nitride nanowire arrays, we demonstrate that the quantum efficiency can be enhanced by more than two orders of magnitude. The internal quantum efficiency and activity on p -type gallium nitride nanowires can reach ~51% and ~4.0?mol hydrogen h?1?g?1, respectively. The nanowires remain virtually unchanged after over 50,000?μmol gas ( hydrogen and oxygen ) is produced, which is more than 10,000 times the amount of photocatalyst itself (~4.6?μmol). The essential role of Fermi-level tuning in balancing redox reactions and in enhancing the efficiency and stability is also elucidated.
机译:太阳能水分解是人工光合作用的关键步骤之一,可以为未来的碳中性,可储存和可持续能源提供能量。在这里,我们表明,在新兴的纳米结构光催化剂上实现高效,稳定的总水分解的主要障碍之一直接与不受控制的表面电荷性质有关。通过调整氮化镓纳米线阵列非极性表面上的费米能级,我们证明了量子效率可以提高两个数量级以上。 p型氮化镓纳米线上的内部量子效率和活度分别可以达到〜51%和〜4.0?mol氢h ?1 ?g ?1 。产生超过50,000?μmol的气体(氢和氧)后,纳米线几乎保持不变,这是光催化剂本身(〜4.6?μmol)的10,000倍以上。还阐明了费米能级调节在平衡氧化还原反应以及提高效率和稳定性方面的重要作用。

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