College of Resources and Environment, Huazhong Agricultural University, Wuhan 430070, PR China.
College of Science, Huazhong Agricultural University, Wuhan 430070, PR China.
J Colloid Interface Sci. 2018 Mar 1;513:866-876. doi: 10.1016/j.jcis.2017.12.002. Epub 2017 Dec 5.
As a new carbon-based material, carbon dots (C-dots) have got widely preference because of its excellent electronic transfer capability. In this work, a novel ternary layered C-dots/g-CN/TiO nanosheets (CGT) composite photocatalysts were prepared by impregnation precipitation methods. The optimal ternary CGT composite samples revealed high photocatalytic hydrogen evolution rate in triethanolamine aqueous solutions, which exceeded the rate of the optimal g-CN/TiO composite sample by a factor of 5 times. The improved photocatalytic activity is owed to the positive effects of C-dots and layered heterojunction structure of TiO nanosheets and g-CN sheets. C-dots in the CGT composites can serve as electron reservoirs to capture the photo-induced electrons. The well-defined layered heterojunction structure of CGT provides the intimate contact and the strong interaction of anatase TiO nanosheets and g-CN sheets via face-to-face orientation, which restrains the recombination of photogenerated charge carriers, and thus enhances the photocatalytic H-production activity. Electron paramagnetic resonance and transient photocurrent response proved the strong interaction and improved interfacial charge transfer of TiO nanosheets and g-CN sheets, respectively. The mechanism of improving the photocatalytic H-evolution activity was further confirmed by time-resolved fluorescence, electron paramagnetic resonance, transient photocurrent response and electrochemical impedance spectroscopy.
作为一种新型的碳基材料,碳点(C-dots)因其优异的电子传递能力而受到广泛关注。本工作采用浸渍沉淀法制备了一种新型的三元层状 C-dots/g-CN/TiO 纳米片(CGT)复合光催化剂。最佳三元 CGT 复合样品在三乙醇胺水溶液中显示出高的光催化析氢速率,比最佳 g-CN/TiO 复合样品的速率提高了 5 倍。改进的光催化活性归因于 C 点和 TiO 纳米片和 g-CN 片的层状异质结结构的积极影响。CGT 复合材料中的 C 点可以作为电子库来捕获光致电子。CGT 的明确分层异质结结构通过面对面取向提供了锐钛矿 TiO 纳米片和 g-CN 片之间的紧密接触和强相互作用,抑制了光生载流子的复合,从而提高了光催化 H 产生活性。电子顺磁共振和瞬态光电流响应分别证明了 TiO 纳米片和 g-CN 片之间的强相互作用和改善的界面电荷转移。通过时间分辨荧光、电子顺磁共振、瞬态光电流响应和电化学阻抗谱进一步证实了提高光催化 H 演化活性的机制。