首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Band alignment and enhanced photocatalytic activation of alpha/beta-Bi2O3 heterojunctions via in situ phase transformation
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Band alignment and enhanced photocatalytic activation of alpha/beta-Bi2O3 heterojunctions via in situ phase transformation

机译:通过原位相变实现α/β-Bi2O3异质结的能带排列和增强的光催化活化作用

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摘要

The assembling heterojunction, one of the key topics in photocatalysts and semiconductors (SCs), is generally accomplished in at least two steps, of which the first step is the synthesis of a matrix, and then the growth of the second phase on the matrix. Herein we present the preparation of alpha/beta-Bi2O3 heterojunctions by an in situ phase transformation technique. Under normal pressure, a facile citrate method was used to synthesize beta-Bi2O3 nanosheets and alpha/beta-Bi2O3 heterojunctions. The novel features of the process are the mild operating conditions by an appropriate selection of heat treatment temperature and time. Using transmission electron microscopy (TEM), we found that a number of nano-sized alpha-Bi2O3 form on the beta-Bi2O3 nanosheet via a controlled beta ->alpha phase transition, generating a large number of heterojunctions. The CM1 (calcining beta-Bi2O3 precursor at 363 degrees C for 4 h) heterojunction achieves a strong visible light absorption and dye absorption capacity and produces a very high reaction rate for Rhodamine B (RhB) photodegradation. Electrochemical impedance spectroscopy (EIS) revealed excellent charge transfer characteristics of the heterojunction, which accounts for its high photoactivity. Using the X-ray electron valence band spectra, it is found that the valence band of alpha-Bi2O3 is more negative than that of beta-Bi2O3. Thus, in heterojunctions, the photogenerated holes in beta-Bi2O3 are transferred to alpha-Bi2O3 with good charge transport characteristics by the intrinsic driving force in the interface field. Furthermore, a separated hole can accomplish a transfer process from alpha-Bi2O3 to the aqueous solution within its lifetime due to the diameter of a-Bi2O3 being less than 17.6 nm.
机译:组装异质结是光催化剂和半导体(SC)中的关键主题之一,通常至少需要两个步骤才能完成,其中第一步是合成基质,然后在基质上生长第二相。本文中,我们介绍了通过原位相变技术制备α/β-Bi2O3异质结。在常压下,采用简便的柠檬酸盐方法合成β-Bi2O3纳米片和α/β-Bi2O3异质结。该方法的新颖特征是由热处理的温度和时间的适当选择的操作条件温和。使用透射电子显微镜(TEM),我们发现β-Bi2O3纳米片上通过受控的β->α相变形成了许多纳米尺寸的α-Bi2O3,从而产生了大量的异质结。 CM1(在363摄氏度下煅烧β-Bi2O3前体4小时)异质结具有很强的可见光吸收和染料吸收能力,并且对若丹明B(RhB)的光降解产生非常高的反应速率。电化学阻抗谱(EIS)揭示了异质结的出色电荷转移特性,这说明了其高光活性。使用X射线电子价带谱,发现α-Bi2O3的价带比β-Bi2O3的价带更负。因此,在异质结中,β-Bi2O3中的光生空穴通过界面场中的固有驱动力转移到具有良好电荷传输特性的α-Bi2O3中。此外,由于a-Bi2O3的直径小于17.6 nm,因此分离的孔可以在其寿命内完成从α-Bi2O3到水溶液的转移过程。

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