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Anion engineering of exfoliated CoAl layered double hydroxides on hematite photoanode toward highly efficient photoelectrochemical water splitting

机译:渗透煤层双氢氧化物对高效光电化学水分裂的灭绝煤层双氢氧化物的阴离子工程

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摘要

The exploration of highly efficient oxygen evolution cocatalysts is believed to be an efficient strategy to enhance the photoelectrochemical (PEC) water splitting of hematite (alpha-Fe2O3) photoanode. Herein, exfoliated CoAl layered double hydroxides (CoAl-LDHs) were successfully decorated on alpha-Fe2O3 films by using layer-by-layer assembly method with the assistance of common anions (An-), such as NO3-, CO32-, SO42- and PO43-. Results indicated An--CoAl-LDHs/alpha-Fe2O3 photoanodes exhibited strong anion-dependent performance for PEC water oxidation. The NO3-, CO32-, SO(4)(2-)and PO43- engineered CoAl-LDHs/alpha-Fe2O3 displayed the photocurrent density at 1.23 V in 1 mol L-1 KOH of 1.90, 2.36, 3.19 and 4.30mAcm(-2), which were ca. 2.5, 3.1, 4.2 and 5.6 times that of bare alpha-Fe2O3 (0.76mAcm(-2)) respectively. Experimental studies indicated tetrahedral PO43- and SO42- were much more feasible for the assembly of CoAl-LDHs than that of triangular NO3- and CO32-, thus caused higher electrochemical surface area (ECSA). The anion with higher charge number and the tetrahedral configuration were more beneficial for the charge separation in bulk alpha-Fe2O3 and the charge transfer between CoAl-LDHs slabs. Mott-Schottky tests suggested p-n heterojunctions were formed at the interface of alpha-Fe2O3 and CoAl-LDHs, which could inhibit the surface charge recombination and further increase charge separation. As a result, PO43--CoAl-LDHs/alpha-Fe2O3 displays the best performance for PEC water oxidation. The strategy of engineering exfoliated CoAl-LDHs with anions on alpha-Fe2O3 in this work will stimulate us to fabricate highly efficient photoanodes with various anions and LDHs materials.
机译:据信,对高效氧气进化助催化剂的探索是一种有效的策略,以增强赤铁矿(Alpha-Fe2O3)光电沸石的光电化学(PEC)水分裂。这里,通过使用层组装法在常见阴离子(AN-)的辅助下,通过层 - 逐层组装方法在α-Fe 2 O 3膜上成功地装饰出剥离煤层双氢氧化物(煤LDH),例如NO3-,CO32-,SO42-和po43-。结果表明,AN - 煤LDHS / Alpha-Fe2O3光阳极对PEC水氧化具有强烈的阴离子依赖性性能。 NO3-,CO32-,SO(4)(2-)和PO43-工程化煤LDH /α-FE2O3在1.90,2.36,3.19和4.30MACM( -2),这是加利福尼亚州。 2.5,3.1,4.2和5.6倍的裸α-Fe2O3(0.76macm(-2))。实验研究表明Tetrahedral PO43-和SO42-煤LDH组装比三角形NO3-和CO32-的组装更加可行,因此引起了更高的电化学表面积(ECSA)。具有更高电荷数和四面体构型的阴离子对散装α-Fe2O3中的电荷分离和煤LDHS板之间的电荷转移更有利。 Mott-Schottky测试建议在α-Fe2O3和煤LDH的界面形成P-N异质功能,这可能抑制表面电荷重组并进一步增加电荷分离。结果,PO43 - 煤LDHS / Alpha-Fe2O3显示了PEC水氧化的最佳性能。在这项工作中,在alpha-Fe2O3上具有阴离子的工程剥离煤LDH的策略将刺激我们用各种阴离子和LDHS材料制造高效的光磁性。

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