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A bottom-up acidification strategy engineered ultrathin g-C3N4 nanosheets towards boosting photocatalytic hydrogen evolution

机译:自下而上的酸化策略工程化超薄G-C3N4纳米片升压光催化氢气进化

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摘要

At present, graphene-like carbon nitride (g-C3N4) has been considered as a promising photocatalyst for photocatalytic hydrogen gas (H-2) evolution from water. The top-down treating of pristine bulk g-C3N4 (CN-B) by strong acid is an efficient modification way to improve photocatalytic performance, yet this strategy is environmental unfriendly because it requires higher strong acid concentration. To this end, here we firstly developed an available bottom-up acidification strategy to prepare the 2D ultrathin g-C3N4 nanosheets (UCNs) by the direct calcination of as-formed precursor derived from hydrothermal treating of melamine merely in diluted H2SO4 solution. As a result, the engineered UCNs with an average thickness of approximately 3 nm exhibited a remarkably enhanced visible-light-driven photocatalytic H-2 evolved rate of 2590 mu mol g(-1) h(-1) (lambda > 400 nm), which is over 9.9-folds and 2.2-folds larger than that of CN-B and acid-treated g-C3N4 (CN-A) under the same condition, respectively. Our research offers a feasible and effective bottom-up acidification strategy for synthesizing the high-performance UCNs photocatalyst towards renewable solar energy conversion. (C) 2020 Elsevier Ltd. All rights reserved.
机译:目前,石墨烯碳氮化物(G-C3N4)被认为是从水中的光催化氢气(H-2)进化的有希望的光催化剂。通过强酸的自上而下处理原始散装G-C3N4(CN-B)是改善光催化性能的有效改性方式,但该策略是环境不友好的,因为它需要更高的强酸浓度。为此,在这里,我们首先通过仅在稀释的H 2 SO 4溶液中衍生自三聚氰胺的水热处理的作为形成的前体的直接煅烧来制定可用的自下而上的酸化策略。结果,具有约3nm的平均厚度的工程化UCN具有显着增强的可见光触发光催化H-2进化率为2590μmmolg(-1)h(-1)(lambda> 400nm) (分别在相同条件下分别超过9.9倍,酸处理的G-C3N4(CN-A)大于9.9倍和2.2倍。我们的研究提供了可行有效的自下而上的酸化策略,用于将高性能UCNS光催化剂融为可再生太阳能转换。 (c)2020 elestvier有限公司保留所有权利。

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