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Sustained Solar H_2 Evolution from a Thiazolo[5,4-d]thiazole-Bridged Covalent Organic Framework and Nickel-Thiolate Cluster in Water

机译:从噻唑[5,4-D]噻唑桥 - 桥桥的共价有机骨架和镍硫醇含量在水中的持续太阳能H_2进化

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摘要

Solar hydrogen (H-2) evolution from water utilizing covalent organic frameworks (COFs) as heterogeneous photosensitizers has gathered significant momentum by virtue of the COFs' predictive structural design, long-range ordering, tunable porosity, and excellent light-harvesting ability. However, most photocatalytic systems involve rare and expensive platinum as the co-catalyst for water reduction, which appears to be the bottleneck in the development of economical and environmentally benign solar H-2 production systems. Herein, we report a simple, efficient, and low-cost allin-one photocatalytic H-2 evolution system composed of a thiazolo[5,4-d]thiazole-linked COF (TpDTz) as the photoabsorber and an earth-abundant, noble-metal-free nickelthiolate hexameric cluster co-catalyst assembled in situ in water, together with triethanolamine (TEoA) as the sacrificial electron donor. The high crystallinity, porosity, photochemical stability, and light absorption ability of the TpDTz COF enables excellent long-term H-2 production over 70 h with a maximum rate of 941 mu mol h(-1) g(-1), turnover number TONNi 103, and total projected TONNi 443 until complete catalyst depletion. The high H-2 evolution rate and TON, coupled with long-term photocatalytic operation of this hybrid system in water, surpass those of many previously known organic dyes, carbon nitride, and COF-sensitized photocatalytic H2O reduction systems. Furthermore, we gather unique insights into the reaction mechanism, enabled by a specifically designed continuous-flow system for non-invasive, direct H-2 production rate monitoring, providing higher accuracy in quantification compared to the existing batch measurement methods. Overall, the results presented here open the door toward the rational design of robust and efficient earth-abundant COF-molecular co-catalyst hybrid systems for sustainable solar H-2 production in water.
机译:利用共价有机框架(COF)的水氢(H-2)进化作为异质光敏剂,通过COF的预测结构设计,远程排序,可调谐孔隙度和优异的光收获能力,具有显着的势头。然而,大多数光催化系统涉及稀有和昂贵的铂作为水还原的助催化剂,这似乎是经济和环境良性太阳能H-2生产系统开发的瓶颈。在此,我们报告了一种简单,有效和低成本的Allin-One的光催化H-2进化系统,其由噻唑洛[5,4-D]噻唑连接的COF(TPDTZ)作为光吸收和土壤丰富的高贵无级氯化萘酸酯的六聚簇助催化剂在水中组装在水中,与三乙醇胺(TEOA)一起作为牺牲电子给体。 TPDTZ COF的高结晶度,孔隙率,光化学稳定性和光吸收能力使得优异的长期H-2产生超过70小时,最大速率为941μmolH(-1)G(-1),周转数TONNI> 103,总投影吨> 443直至完全催化剂耗尽。高H-2进化速率和吨,与水中该杂交系统的长期光催化操作相结合,超越了许多先前已知的有机染料,氮化物和COF敏化光催化H2O还原系统。此外,我们将独特的见解进入反应机制,通过专门设计的连续流动系统,用于非侵入性,直接的H-2生产率监测,与现有的批量测量方法相比,提供更高的定量精度。总体而言,此处提出了朝向水中可持续太阳能H-2生产的鲁棒和高效地球丰富的COF分子助催化剂混合系统的合理设计。

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  • 来源
    《Journal of the American Chemical Society》 |2019年第28期|11082-11092|共11页
  • 作者单位

    Max Planck Inst Solid State Res Heisenbergstr 1 D-70569 Stuttgart Germany;

    Max Planck Inst Solid State Res Heisenbergstr 1 D-70569 Stuttgart Germany|Univ Munich LMU Dept Chem Butenandtstr 5-13 D-81377 Munich Germany;

    Max Planck Inst Solid State Res Heisenbergstr 1 D-70569 Stuttgart Germany;

    Max Planck Inst Solid State Res Heisenbergstr 1 D-70569 Stuttgart Germany|Univ Munich LMU Dept Chem Butenandtstr 5-13 D-81377 Munich Germany;

    Max Planck Inst Solid State Res Heisenbergstr 1 D-70569 Stuttgart Germany|Univ Munich LMU Dept Chem Butenandtstr 5-13 D-81377 Munich Germany;

    Max Planck Inst Solid State Res Heisenbergstr 1 D-70569 Stuttgart Germany|Univ Munich LMU Dept Chem Butenandtstr 5-13 D-81377 Munich Germany;

    Max Planck Inst Solid State Res Heisenbergstr 1 D-70569 Stuttgart Germany;

    Univ Munich LMU Dept Chem Butenandtstr 5-13 D-81377 Munich Germany|Ctr Nanosci Schellingstr 4 D-80799 Munich Germany;

    Max Planck Inst Solid State Res Heisenbergstr 1 D-70569 Stuttgart Germany|Univ Munich LMU Dept Chem Butenandtstr 5-13 D-81377 Munich Germany|Ctr Nanosci Schellingstr 4 D-80799 Munich Germany|NIM Schellingstr 4 D-80799 Munich Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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