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Unexpected effect of stacking manner of covalent triazine polymer on photocatalytic hydrogen production

机译:共价三嗪聚合物对光催化氢生产的堆叠方式意外效果

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摘要

Photocatalytic water splitting has been considered as a promising approach to generate H-2 for addressing energy crisis and environmental issues. Herein, we fabricated two novel covalent triazine polymers (CTP), the compact CTP-TG-1 (TG is abbreviation of Tiangong University) and incompact CTP-TG-2, to explore the effect of stacking manner of 2D semiconductor on photocatalytic H-2 production. The compact CTP-TG-1 shows excellent H-2 production rate of 7066.15 mu mol h(-1) g(-1). Meanwhile, the incompact counterpart, CTP-TG-2, which was constructed by tridimensional monomer, exhibits quite low H-2 production rate of 171.65 mu mol h(-1) g(-1). Although the two CTPs possess similar intrinsic features in visible-light absorbance, charge-carrier lifetime and energy level, the electrochemical measurements indicate that the compact CTP-TG-1 possesses faster charge-carrier transport, which is crucial for photocatalytic H-2 generation. For the compact CTP-TG-1, the hot pi-electrons in each 2D layer not only can migrate within the 2D plane, but also tunnel through 2D interlayer and then to Pt NPs on the surface for H-2 generation. In contrast, owing to the large distance of loose 2D interlayer, the incompact CTP-TG-2 shows much lower photocatalytic activity as a result of the suppressed hot pi-electrons tunneling. Furthermore, we designed and synthesized other three CTPs, including compact CTP-TG-4 and CTP-TG-5 and incompact CTP-TG-3. As expected, the compact CTP-TG-4 and CTP-TG-5 display one order of magnitude higher photocatalytic activity than that of the compact CTP-TG-3, further confirming the significant contribution of 2D stacking manner on photocatalytic hydrogen production.
机译:光催化分解水被认为是一种很有前途的产生H-2的方法,用于解决能源危机和环境问题。在此,我们制备了两种新型共价三嗪聚合物(CTP),即紧凑型CTP-TG-1(TG是天宫大学的缩写)和松散型CTP-TG-2,以探索2D半导体的堆叠方式对光催化H-2生成的影响。紧凑型CTP-TG-1的H-2产率高达7066.15μmol H(-1)g(-1)。同时,由三维单体构建的松散对应物CTP-TG-2显示出相当低的H-2产率,为171.65μmol H(-1)g(-1)。尽管这两种CTP在可见光吸收率、载流子寿命和能级方面具有相似的固有特征,但电化学测量表明紧凑型CTP-TG-1具有更快的载流子传输,这对光催化H-2生成至关重要。对于紧凑的CTP-TG-1,每个2D层中的热π电子不仅可以在2D平面内迁移,还可以通过2D层间隧道,然后在表面上的Pt NP处生成H-2。相比之下,由于松散的2D中间层间距较大,松散的CTP-TG-2由于受到热pi电子隧穿的抑制而显示出更低的光催化活性。此外,我们还设计并合成了其他三种CTP,包括紧凑型CTP-TG-4、CTP-TG-5和松散型CTP-TG-3。正如所料,紧凑型CTP-TG-4和CTP-TG-5的光催化活性比紧凑型CTP-TG-3高一个数量级,进一步证实了2D堆叠方式对光催化制氢的重大贡献。

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  • 来源
    《Journal of Materials Science 》 |2021年第9期| 共14页
  • 作者单位

    Tiangong Univ Sch Chem &

    Chem Engn State Key Lab Membrane Separat &

    Membrane Proc Tianjin 300387 Peoples R China;

    Beijing Univ Chem Technol Coll Chem Engn Beijing 100029 Peoples R China;

    Beijing Univ Chem Technol Coll Chem Engn Beijing 100029 Peoples R China;

    Tiangong Univ Sch Chem &

    Chem Engn State Key Lab Membrane Separat &

    Membrane Proc Tianjin 300387 Peoples R China;

    Tiangong Univ Sch Chem &

    Chem Engn State Key Lab Membrane Separat &

    Membrane Proc Tianjin 300387 Peoples R China;

    Tiangong Univ Sch Chem &

    Chem Engn State Key Lab Membrane Separat &

    Membrane Proc Tianjin 300387 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学 ;
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