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Fabrication, Characterization, and Photoelectrochemical Properties of Cu-Doped PbTiO3 and Its Hydrogen Production Activity

机译:Cu掺杂PBTIO3及其氢气生产活性的制备,表征和光电化学性质

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We report herein the fabrication of visible-light responsive n-type PbTiO3 by a combustion method and p-type Cu-doped PbTiO3 by an impregnation method to improve hydrogen production activity. Copper was doped into the PbTiO3 lattice up to 1wt%; any further increase in the loading resulted in the formation of CuO on the surface of the sample. Photoluminescence confirmed that 1wt% Cu-doped PbTiO3 effectively suppressed the defects in PbTiO3, which helped to reduce the recombination rate of the photoinduced charge carriers. The prepared PbTiO3 photocatalyst behaves as an n-type semiconductor, whereas 1wt% Cu-doped PbTiO3 behaves as a p-type semiconductor. The photocatalytic hydrogen production activity of PbTiO3 increased with increasing Cu content up to 1wt% and thereafter decreased upon further loading. The 1wt% Cu-doped PbTiO3 sample showed higher activity for hydrogen liberation than pristine PbTiO3 (2.5times) and all of the other CuO-loaded samples(.) The energy conversion efficiency of 1wt% Cu-doped PbTiO3 was 5.95% for hydrogen production under visible-light irradiation. The enhanced hydrogen production activity of Cu-doped PbTiO3 was discussed on the basis of optimum copper doping, photoluminescence intensity, and their band-edge positions. However, the higher activity of CuO-loaded (>1wt%) PbTiO3 relative to that of neat PbTiO3 is perhaps a result of the extensive light absorption properties of the CuO nanoparticles, which help to generate more electron-hole pairs on the surface.
机译:我们通过浸渍方法通过燃烧方法和P型Cu掺杂PBTIO3制备可见光响应N型PBTIO3以改善氢气产生活性。铜被掺杂到PBTIO3晶格中,高达1wt%;负载的任何进一步增加导致样品表面上的CuO。光致发光证实,1wt%Cu掺杂的PBTIO3有效地抑制了PBTIO3中的缺陷,这有助于降低光抑制电荷载体的重组率。制备的PBTIO3光催化剂的表现为N型半导体,而1wt%Cu掺杂的PBTIO3表现为p型半导体。 PBTIO3的光催化氢气产生活性随高达1wt%的Cu含量增加而增加,然后在进一步加载时降低。 1wt%Cu掺杂的PBTIO3样品显示出比原始PBTIO3(2.5倍)的氢气释放的更高活性,并且所有其他CuO负载样品(。)氢气产生的1wt%Cu掺杂PBTIO3的能量转化效率为5.95%在可见光辐照下。基于最佳铜掺杂,光致发光强度及其带缘位置讨论Cu掺杂PBTIO3的增强的氢气产生活性。然而,相对于纯PBTIO3的Cuo-Loaded(> 1wt%)pBTiO3的较高活性可能是CuO纳米颗粒的广泛光吸收性能的结果,这有助于在表面上产生更多的电子孔对。

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