【无机化学学报】doi: 10.11862/CJIC.20240255
采用原位聚合法制备了氯氧化铋(BiOCl)与聚苯胺(PANI)复合的Ⅱ型异质结光催化剂BiOCl/PANI,并采用X射线衍射(XRD)、傅里叶变换红外光谱(FTIR)、透射电子显微镜(TEM)、X射线光电子能谱(XPS)、紫外可见漫反射光谱(UV-Vis DRS)和N2吸附-脱附测试等多种技术手段对其进行了表征,考察了BiOCl/PANI在模拟可见光下对罗丹明B (RhB)的光催化降解性能。实验结果表明:BiOCl/PANI催化剂比PANI和BiOCl具有更高的光催化活性,在RhB质量浓度为50 mg·L-1、PANI与BiOCl的物质的量之比为0.02∶1、50 mg·L-1的催化剂条件下,所制备的BiOCl/PANI光催化150 min后,RhB降解率为98.8%,速率常数为0.031 min-1;经过4次循环实验后,RhB降解率从98.8%降低至98.4%,表现出良好的稳定性和可重复利用性。光催化剂BiOCl/PANI实现了电子和空穴对的快速分离,降低了二者在催化剂内部的复合速率,提高了光催化性能。
【大学化学】doi: 10.12461/PKU.DXHX202405147
仪器分析实验“分子荧光法测定罗丹明B的含量”存在实验过于简单、未考虑实际情况等问题。因此,本改进实验在三维荧光扫描模式下获取样本数据,不进行复杂预处理,而是运用化学计量学算法解析出目标分析物的纯信号,进而实现了染色辣椒中罗丹明6G和123的同时测定。本改进实验提高了学生全面考虑问题和创新解决问题的能力。
【无机化学学报】doi: 10.11862/CJIC.20240219
A simple two-step hydrothermal method synthesized four different CdS/Fe3O4 photocatalysts with varying ratios of mass of CdS to Fe3O4. The composition and morphology of the prepared samples were investigated using X-ray diffraction (XRD), Raman spectrum, X-ray photoelectron spectroscopy (XPS), scanning electron microscopy (SEM), and transmission electron microscopy (TEM). Solid UV reflectance spectra testing found that CdS/Fe3O4 nanocomposites had good light absorption throughout the spectral range, promoting their photocatalytic properties. Under visible light irradiation, CdS/Fe3O4 (2:5) with a mass ratio of 2:5 exhibited excellent photocatalytic performance, with a degradation rate of 98.8% for rhodamine B. Furthermore, after five cycles of photocatalytic degradation reaction, the rhodamine B degradation rate remained at 96.2%, indicating that the photocatalysts have good photocatalytic stability.
【无机化学学报】doi: 10.11862/CJIC.20250028
A flower-like BiOBr photocatalyst (CS/BiOBr) was prepared by using the carbon material derived from corn straw (CS) as the carrier. The prepared composites were characterized by X - ray diffraction (XRD), Fourier transform infrared (FIIR) spectra, scanning electron microscope (SEM), X - ray photoelectron spectra (XPS), and UV-Vis diffuse reflectance spectra (UV-Vis DRS). The SEM analyses indicate that the introduction of CS promotes the formation of a unique flower-like structure in BiOBr, which not only optimizes the efficiency of light capture but also increases the specific surface area of BiOBr. The bandgap of the composite was narrower compared with the pure BiOBr. The CS/BiOBr composites exhibited higher photocatalytic activity than pure CS and BiOBr under visible light irradiation, and a higher first-order reaction rate constant (k) of 0.043 7 min-1 than BiOBr (0.014 6 min-1), and exhibited excellent stability and reusability during the cyclic run. The enhanced photocatalytic activity is attributed to the efficient separation of photoinduced electrons and holes. Superoxide radicals and holes were the major active species.
【物理化学学报】doi: 10.3866/PKU.WHXB202402006
有机-无机卤化物钙钛矿太阳能电池(PSCs)因其优异的光伏性能(PCE)和简单的制备工艺而受到广泛关注。然而,界面处的电荷复合是制约PSCs光电转换效率进一步提高的关键因素。本文基于旋涂镀膜法利用室温合成的六氯锡酸铵(AH)晶体对钙钛矿薄膜(PSK)和电子传输层之间的界面进行修饰。AH是一种无机锡基钙钛矿材料,可以钝化PSK中的缺陷,建立更好的晶格匹配,从而提高PSK的质量和结晶度。开尔文探针力显微镜结果证实,AH促进了光生电子的定向迁移。飞秒瞬态吸收光谱结果说明AH有效缩短了电子抽取寿命,促进了界面电子转移。基于AH改性的优点,AH修饰的PSCs具有更高的PCE和更小的迟滞效应。
【物理化学学报】doi: 10.1016/j.actphy.2025.100064
光催化合成过氧化氢(H2O2)是一种至关重要的清洁能源转化过程,涉及对氧气的两电子还原。然而,这一过程常常受限于缓慢的水氧化反应,后者需要光生空穴的参与。为了应对此挑战,我们设计了一种双功能的S型ZnO/CdIn2S4异质结体系,将H2O2生成与增值的苄胺(BA)氧化反应进行耦合。在此双功能光催化系统中,CdIn2S₄中的光生电子可以高效地还原O2生成H2O2,而ZnO中的光生空穴则选择性地将BA氧化为N-亚苄基苄胺。得益于S型异质结的优势,相比于纯ZnO或CdIn2S4,优化后的ZnO/CdIn2S4光催化剂展示出显著更高的H2O2生成速率(386 μmol·L−1·h−1)和BA转化率(81%)。飞秒瞬态吸收光谱(fs-TA)结果说明,ZnO/CdIn2S4复合材料在光的激发下,在ZnO导带(CB)和CdIn2S4价带(VB)之间发生超快S型电子转移。此外,ZnO的VB空穴和CdIn2S4的CB电子的及时消耗,有助于加速ZnO/CdIn2S4 S型异质结界面中的电荷转移。本文中ZnO/CdIn2S4 S型光催化体系的创新设计为高效的双功能异质结光催化系统的开发提供了新的思路,并引入了一种利用fs-TA光谱研究S型异质结的新方法。
【物理化学学报】doi: 10.3866/PKU.WHXB202306007
可再生能源驱动的电催化水裂解是获取绿氢的重要途径,但受到缓慢的阳极析氧反应(OER)限制。使用热力学有利的5-羟甲基糠醛氧化反应(HMFOR)代替OER的电解水制氢耦合氧化策略提供了一种降低制氢能耗的有效策略,同时可以生产高附加值的有机含氧化合物,如2, 5-呋喃二甲酸(FDCA)。在该领域,大量工作集中于催化剂工程以获得更好的催化活性和产物选择性。然而,很少有研究关注到5-羟甲基糠醛(HMF)的规模化氧化制备FDCA。为此,我们合成了一种镍钒水滑石(NiV-LDH)催化剂用于高效HMFOR,在1.52 V vs. RHE (可逆氢电极)下,电流密度100 mA∙cm−2时FDCA的法拉第效率高达94.6%。与OER相比,HMFOR将对应的氢气生产速率提高了两倍。作为概念验证,我们使用流动反应器展示了连续且可规模化的HMFOR,在10 A条件下,实现了94.8%的高HMF单程转化率和98.5%的高FDCA选择性。