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1.
通过半导体催化剂利用太阳能分解水制氢被认为是解决人类面临的环境问题和能源危机的有效途径.在众多的半导体光催化剂中,TiO2由于其良好的光化学稳定性、无毒性、丰富的形貌以及低廉的价格,在光催化制氢领域备受关注.然而TiO2的内在缺陷,如较宽的带隙、较窄的光响应范围,光生电子空穴对的快速复合,极大限制了其太阳能制氢效率.构建异质结结构被认为是解决以上问题的一个有效方法,通过将TiO2与另一个半导体复合可以提升催化剂对太阳光的吸收范围,也可降低光生电子空穴对的复合速率.但构建一个成功的异质结结构不仅要满足上述的要求,还需要保留异质结催化剂体系中光生电子和空穴的氧化还原能力.研究表明,S型异质结是将两个具有合适能带结构的半导体进行耦合,由于费米能级的差异,两个半导体间将发生电子转移,从而引起能带弯曲并形成内建电场.光照条件下,具有较弱还原能力的光生电子在内建电场和能带弯曲的作用下与较弱氧化能力的光生空穴复合,实现异质结催化剂体系中各个半导体内部光生载流子有效分离的目标,同时保留了异质结催化剂体系中较强氧化能力和较强还原能力的光生电子和空穴,进而实现光催化活性的提高.本文采用水热合成方法,将具有更强还原能力和可见光响应特性的半导体(ZnIn2S4)原位生长在TiO2纳米纤维表面,构建了1D/2DTiO2/ZnIn2S4S型异质结光催化剂.最优比例的TiO2/ZnIn2S4复合材料表现出优越的光催化制氢活性(6.03mmol/h/g),分别是纯TiO2和纯ZnIn2S4制氢活性的3.7倍和2倍.TiO2/ZnIn2S4复合材料光催化活性的提高可以归因于紧密的异质结界面、光生载流子的有效分离、丰富的反应活性位点以及增强的光吸收能力.通过原位XPS和DFT计算研究了异质结内部光生电子的转移机制.结果表明,在光照条件下电子由TiO2向ZnIn2S4迁移,遵循了S型异质结内部电子的转移机制,实现了TiO2和ZnIn2S4内部光生载流子的有效分离,同时保留了具有较强还原能力的ZnIn2S4价带电子和较强氧化能力的TiO2导带空穴,从而显著提升光催化制氢效率.综上,本文制备的TiO2/ZnIn2S4S型异质结光催化剂很好地克服了TiO2在光催化制氢领域所面临的诸多障碍,为设计和制备高效异质结光催化剂提供了新的思路.  相似文献   

2.
张彬  胡晓云  刘恩周  樊君 《催化学报》2021,42(9):1519-1529
近年来,能源短缺和环境污染严重威胁人类的可持续发展.光催化技术具有绿色环保、成本低等优势,被认为是解决上述问题的最佳途径之一,其实用化的核心是开发高效可见光催化材料.石墨相氮化碳(g-C3N4)因其物理化学性质稳定、无毒、廉价及能带适宜等特点,广泛应用于光催化领域.然而,光生载流子易复合、比表面积小等问题不利于其实际应用,构建g-C3N4基2D/2D异质结不仅能促进载流子有效分离,而且能为反应提供更多表面空间环境,是提高g-C3N4催化活性的有效途径.目前,I型和II型异质结虽能促进电荷分离,但降低了电荷参与表面反应的电势;而S型异质结电荷转移机制遵循热力学和动力学规律,能很好保留高氧化还原能力的电子和空穴,因而备受关注.当前,开发S型g-C3N4基2D/2D异质结有助于发展高效光催化体系.本文首先以三聚氰胺为前驱体,通过二次高温煅烧得到2D g-C3N4纳米片;随后,以Bi(NO3)3·5H2O和KBr为反应物,乙二胺和水为溶剂,借助室温原位自组装法获得一系列不同质量比的BiOBr/g-C3N4异质结.研究表明,BiOBr均匀分布于g-C3N4表面形成具有良好接触界面的2D/2D异质结,而且BiOBr/g-C3N4比表面积可提高至g-C3N4的2.4倍.当BiOBr与g-C3N4质量比为1.5:1时,可见光照射30 min,30 mg复合样品可将浓度为10 mg·L-1的RhB(100 mL)几乎全部降解,降解过程符合一级反应动力学,降解速率是g-C3N4的48.2倍.此外,该体系具有一定的光催化析氢活性及良好的循环稳定性.X射线光电子能谱、紫外光电子能谱、莫特肖特基、电化学阻抗谱分析及活性物种捕获等实验结果表明,由于还原性半导体g-C3N4与氧化型半导体BiOBr费米能级不同,二者接触时,电子从费米能级高的g-C3N4转移至费米能级低的BiOBr,在复合材料界面产生强的内建电场,借助带边弯曲和库仑力共同作用,形成了具有S型电荷转移途径的2D/2D BiOBr/g-C3N4异质结.在光照条件下,g-C3N4价带空穴能与BiOBr导带电子快速复合(一般认为是无用的电荷),从而使具有高反应活性的g-C3N4导带电子与BiOBr价带空穴参与表面反应,有效提高了体系的催化活性.综合本文及其他相关研究可知,在由氧化型和还原型半导体组成的异质结中,S型电荷转移机制具有一定普适性,可指导开发高效光催化体系以解决能源和环境问题.  相似文献   

3.
The threat and global concern of energy crises have significantly increased over the last two decades. Because solar light and water are abundant on earth, photocatalytic hydrogen evolution through water splitting has been considered as a promising route to produce green energy. Therefore, semiconductor photocatalysts play a key role in transforming sunlight and water to hydrogen energy. To date, various photocatalysts have been studied. Among them, TiO2 has been extensively investigated because of its non-toxicity, high chemical stability, controllable morphology, and high photocatalytic activity. In particular, 1D TiO2 nanofibers (NFs) have attracted increasing attention as effective photocatalysts because of their unique 1D electron transfer pathway, high adsorption capacity, and high photoinduced electron–hole pair transfer capability. However, TiO2 NFs are considered as an inefficient photocatalyst for the hydrogen evolution reaction (HER) because of their disadvantages such as a large band gap (~3.2 eV) and fast recombination of photoinduced electron–hole pairs. Therefore, the development of a high-performance TiO2 NF photocatalyst is required for efficient solar light conversion. In recent years, several strategies have been explored to improve the photocatalytic activity of TiO2 NFs, including coupling with narrow-bandgap semiconductors (such as ZnIn2S4). Recently, microwave (MW)-assisted synthesis has been considered as an important strategy for the preparation of photocatalyst semiconductors because of its low cost, environment-friendliness, simplicity, and high reaction rate. Herein, to overcome the above-mentioned limiting properties of TiO2 NFs, we report a 2D/1D ZnIn2S4/TiO2 S-scheme heterojunction synthesized through a microwave (MW)-assisted process. Herein, the 2D/1D ZnIn2S4/TiO2 S-scheme heterojunction was constructed rapidly by using in situ 2D ZnIn2S4nanosheets decorated on 1D TiO2 NFs. The loading of ZnIn2S4 nanoplates on the TiO2 NFs could be easily controlled by adjusting the molar ratios of ZnIn2S4 precursors to TiO2 NFs. The photocatalytic activity of the as-prepared samples for water splitting under simulated solar light irradiation was assessed. The experimental results showed that the photocatalytic performance of the ZnIn2S4/TiO2 composites was significantly improved, and the obtained ZnIn2S4/TiO2 composites showed increased optical absorption. Under optimal conditions, the highest HER rate of the ZT-0.5 (molar ratio of ZnIn2S4/TiO2= 0.5) sample was 8774 μmol·g-1·h-1, which is considerably higher than those of pure TiO2 NFs (3312 μmol·g-1·h-1) and ZnIn2S4nanoplates (3114 μmol·g-1·h-1) by factors of 2.7 and 2.8, respectively. Based on the experimental data and Mott-Schottky analysis, a possible mechanism for the formation of the S-scheme heterojunction between ZnIn2S4 and TiO2 was proposed to interpret the enhanced HER activity of the ZnIn2S4/TiO2heterojunctionphotocatalysts.   相似文献   

4.
首先采用溶剂热法和高温煅烧法制备1D TiO2纳米带,其次利用溶剂热法将1D TiO2纳米带均匀地穿插到片层结构组装而成的3D ZnIn2S4微球中,所形成的异质结构能有效抑制光生电子-空穴的复合。二元ZnIn2S4微球/TiO2纳米带复合光催化剂在高浓度染料罗丹明B(RhB)的光降解和Cr(VI)的光还原实验中表现出优异的性能。在模拟太阳光照射下,ZnIn2S4/TiO2纳米带光催化降解RhB和还原Cr(VI)的效率相较于纯TiO2颗粒(10%,22%)、TiO2纳米带(45%,40%)、ZnIn2S4(62%,65%)、ZnIn2S4/TiO2颗粒(90%,91%)分别提高至100%和100%。最后,通过紫外-可见...  相似文献   

5.
构建具有高效电荷迁移效率和丰富活性位点的异质结光催化体系是提升光芬顿反应速率的有效途径。本研究通过简单的水热法合成了2D/2D结构的α-Fe2O3/g-C3N4 S型异质结光芬顿催化剂,并使用X射线衍射仪技术(XRD)、透射电子显微镜(TEM)、傅立叶变换红外吸收光谱(FTIR)和紫外-可见吸收光谱(UV-Vis)等分析手段对α-Fe2O3/g-C3N4的晶体结构、微观结构、化学组分和光学性质进行了详细的表征。通过在可见光照射下降解四环素,评测了α-Fe2O3/g-C3N4的催化活性。结果表明,光催化反应与芬顿反应的协同作用使α-Fe2O3/g-C3N4 (1 : 1)展现出了优异的光芬顿催化活性:在可见光照射下,仅加入微量的双氧水便可辅助催化剂在20 min内对四环素的降解率达到78%,其降解速率分别是单一的α-Fe2O3和g-C3N4的3.5倍和5.8倍。α-Fe2O3/g-C3N4复合材料优异的催化活性得益于在2D/2D S型电荷迁移机制上构建的光芬顿催化体系。2D/2D S型异质结能够显著促进电子和空穴的传输与分离,并为催化剂提供较大的比表面积和丰富的活性位点,同时还能保持复合材料最佳的氧化还原能力。此外,光催化反应促进了Fe3+的还原,从而加速了芬顿反应中羟基自由基的产生。总之,本研究为构建高效、稳定的光芬顿催化体系提供了一条简单有效的途径。  相似文献   

6.
从Ce3+处理过的菠菜PSⅡ颗粒中纯化出了D1/D2/Cytb559复合物并研究了Ce3+对其光谱学性质的影响. 结果表明Ce3+处理过的菠菜生长发育改善, PSⅡ颗粒电子传递效率明显加快, D1/D2/Cytb559复合物UV-Vis 谱在Soret区和Q区分别蓝移3和2 nm; 荧光发射峰蓝移5 nm; EXAFS谱表明Ce3+已结合到D1/D2/Cytb559复合物上. 推测Ce3+已同时参与叶绿素卟啉环中N的配位和多肽氨基酸羧基氧的配位, Ce—N键长为0.253 nm, Ce—O键长为0.32 nm. CD谱表明Ce3+结合后其复合物二级结构未发生明显变化. 认为Ce3+加强了D1/D2/Cytb559复合物P680+原初电子供体的功能, 但对反应中心复合物的构象影响不大.  相似文献   

7.
Sustainable photocatalytic H2 evolution has attracted extensive attention in recent years because it can address both energy shortage and environmental pollution issues. In particular, metal sulfide solid-solution photocatalysts have been widely applied in photocatalytic hydrogen generation owing to their excellent light harvesting properties, narrow enough band gap, and suitable redox potentials of conduction and valance bands. However, it is still challenging to develop low-cost and high-efficiency sulfide solid-solution photocatalysts for practical photocatalytic hydrogen evolution. Recently, 1D MnxCd1-xS nanostructures have shown superior light absorption, charge separation, and H2-evolution activity owing to their shortened diffusion pathway of carriers and high length-to-diameter ratios. Thus, 1D MnxCd1-xS nanostructures have been applied in photocatalytic H2 evolution. However, a single MnxCd1-xS photocatalyst still has some disadvantages for photocatalytic H2 evolution, such as the rapid recombination of photogenerated electron-hole pairs and low quantum efficiency. Herein, to further boost the separation of photogenerated charge carriers and H2-evolution kinetics, an in situ solvothermal method was used to synthesize the 1D/2D Schottky-based heterojunctions between the Mn0.2Cd0.8S nanorods (MCS NRs) and Ti3C2 MXene nanosheets (NSs). Furthermore, various characterization methods have been used to investigate the crucial roles and underlying mechanisms of metallic Ti3C2 MXene NSs in boosting the photocatalytic H2 evolution over the Mn0.2Cd0.8S nanorods. X-ray Diffraction (XRD), Transmission Electron Microscope (TEM), High Resolution Transmission Electron Microscopy (HRTEM), element mapping images, and X-ray Photoelectron Spectroscopy (XPS) results clearly demonstrate that hybrid low-cost Schottky-based heterojunctions have been successfully constructed for practical applications in photocatalytic H2 evolution. Additionally, the photocatalytic hydrogen evolution reaction (HER) was also carried out in a mixed solution of Na2SO3 and Na2S using as the sacrificial agents. The highest hydrogen evolution rate of the optimized 1D/2D Schottky-based heterojunction is 15.73 mmol·g-1·h-1, which is 6.72 times higher than that of pure MCS NRs (2.34 mmol·g-1·h-1). An apparent quantum efficiency of 19.6% was achieved at 420 nm. The stability measurements of the binary photocatalysts confirmed their excellent photocatalytic stability for practical applications. More interestingly, the UV-Vis diffuse reflection spectra, photoluminescence (PL) spectrum, transient photocurrent responses, and Electrochemical Impedance Spectroscopy (EIS) Nyquist plots clearly confirmed the promoted charge separation between the MCS NRs and Ti3C2 MXene NSs. The linear sweep voltammetry also showed that the loading of MXene cocatalysts could greatly decrease the overpotential of pure MCS NRs, suggesting that the 2D Ti3C2 NSs could act as an electronic conductive bridge to improve the H2-evolution kinetics. In summary, these results show that the 2D/1D hybrid Schottky-based heterojunctions between metallic Ti3C2 MXene NSs and MCS NRs can not only improve the separation of photogenerated electrons and holes but also decrease the H2-evolution overpotential, thus resulting in significantly enhanced photocatalytic H2 generation. We believe that this study will inspire new ideas for constructing low-cost Schottky-based heterojunctions for practical applications in photocatalytic H2 evolution.   相似文献   

8.
近年来,Fenton反应由于其成本低,反应速度快,操作简单等优势受到了广泛的研究.传统的均相Fenton反应可通过H2O2氧化Fe2+产生具有强氧化性的羟基自由基,用于处理难降解的有机物.然而,Fenton反应存在两个主要问题,首先,在Fenton反应中需要加入大量的酸来维持酸性环境,以保证反应的最佳活性.其次,Fenton反应中铁离子不断流失并形成固体污泥,这严重影响了Fenton反应产生?OH的效率.目前,将光催化反应与非均相芬顿反应相结合是改善这些问题的有效方案.非均相光芬顿反应不仅能提高有机物降解的活性,而且通过光催化剂导带上的电子有效减少Fe^3+的浸出和铁氢氧化物沉淀的产生.最近,作为一种可见光Fenton催化剂,α-Fe2O3可以在几乎中性的条件下发生光芬顿反应,这解决了在反应过程中需要随时调整PH值的问题.此外,光照条件下α-Fe2O3价带上的电子能跃迁至导带并将Fe3+还原成Fe^2+,从而减少铁离子的损耗.然而,由于光生载流子复合率较高等问题,单一α-Fe2O3光催化剂的催化活性仍不理想.构建具有2D/2D结构的S型异质结可以缩短电子在界面间的传输距离,增大材料的活性位点,将光生电子-空穴在空间上分离,从而有效增强光生载流子的分离效率.因此,构建2D/2Dα-Fe2O3/Bi2WO6 S型异质结,并用于光芬顿反应有望进一步提高对有机污染物的降解效率.本文通过简易的水热法制备了具有2D/2D结构的α-Fe2O3/Bi2WO6 S型异质结光芬顿催化剂,并通过XRD、BET、TEM、XPS和UV-Vis等手段对催化剂的晶体结构、元素状态、微观结构、光学性质和化学组分进行了表征.通过在可见光照射下降解甲基蓝(MB),考察了α-Fe2O3/Bi2WO6的光芬顿催化活性.结果表明,由于光催化反应与Fenton反应的协同作用,α-Fe2O3/Bi2WO6表现出了明显增强的光-Fenton催化活性,最佳比例的α-Fe2O3/Bi2WO6的活性分别是单一α-Fe2O3和Bi2WO6的11.06倍和3.29倍.本文将光催化反应与Fenton反应相结合,一方面,光催化反应对Fe^3+的还原有促进作用,提高了Fe2+的浓度,从而提升羟基自由基的产量;另一方面,Fenton反应对α-Fe2O3/Bi2WO6中电子的利用阻止了光生载流子的复合,进一步提高了光催化降解效率.此外,由于二维纳米片之间具有更大的接触面积,2D/2D异质结可以缩短电荷传输时间和距离,促进了光生电子-空穴的分离.同时,具有较大比表面积的2D/2D材料可以在催化剂表面提供大量用于有机物氧化分解的活性位点.而S型异质结的构建不但促进了界面电荷的转移和分离,还能维持最佳的电荷氧化还原电位,这都提升了催化剂的光芬顿催化活性.总之,本文为合成可高效降解有机污染物的非均相光-芬顿催化剂提供了新的思路.  相似文献   

9.
CO2的过量排放造成了全球生态系统的失衡,如温室效应、海洋酸化和极端天气频发等.CO2作为一种储量丰富且可循环利用的碳一资源,利用光催化技术将其催化转化为包括一氧化碳和甲烷在内的碳氢燃料,为上述问题提供了一个很有前景的解决方案.纳米片作为典型的二维材料,其厚度一般低至100 nm.此外,二维材料具有较大的比表面积、可调谐的端基官能团、出色的光学性能以及较好的导电性和柔韧性,在光催化领域受到了广泛关注.在半导体材料中,钛酸镧(La2Ti2O7)具有优良的氧化还原能力和良好的稳定性和耐久性,但与其他半导体类似,La2Ti2O7的宽带隙性质决定了其只能利用波长较短的光,这极大地限制了其对太阳光的利用.为了增强光吸收能力,降低光生载流子的复合,本文通过溶剂热法在La2Ti2O7纳米片上负载薄层Ti3C2 MXen...  相似文献   

10.
研究了苯对Pt/Ga2O3/WO3/ZrO2(PtGWZ)和Pd/Al2O3/WO3/ZrO2(PdAWZ)催化剂上正己烷异构化反应的影响.结果表明,苯可影响PtGWZ和PdAWZ上正己烷异构化反应性能,苯含量越高影响越显著.与PdAWZ相比较,苯对PtGWZ上正己烷异构化反应的影响相对较小;苯对PtGWZ上正己烷异构化反应活性的影响是可逆的,撤除苯后PtGWZ对正己烷异构化的催化性能可完全恢复;苯对PtGWZ上正己烷异构化反应的稳定性没有影响.苯对PdAWZ上正己烷异构化反应活性的影响足不可逆的,PdAWZ用于含苯正己烷异构化反应催化剂会逐渐失活.热失重法积炭分析结果表明,相同条件下,含苯正己烷异构化反应后,PtGWZ上的积炭量较PdAWZ上的积炭量少.分析讨论了苯对PtGWZ和PdAWZ上正己烷异构化反应影响差异性的原因.  相似文献   

11.
采用一步水热法制备了Bi12O17Br2光催化剂,其平均微片尺寸为1.2μm,比表面积约为29 m2·g-1。Bi12O17Br2的禁带宽度为2.42 eV,能够响应可见光。值得注意的是,在光照条件下Bi12O17Br2表面能够产生氧空位;光诱导氧空位不仅能促进氮气在催化剂表面的吸附,而且对吸附的氮气分子的活化起到至关重要的作用。实验结果表明在可见光照射下,Bi12O17Br2光催化剂上的氨生成速率为337.6μmol·g-1·h-1。在可见光的驱动下,Bi12O17Br2光催化剂能够实现氮气与水反应生成氨的过程。  相似文献   

12.
首先采用相分离的水解-溶剂热法制备了Bi2O3纳米粒子,然后利用简单的湿化学法在Bi2O3表面负载不同比例的TiO2纳米颗粒,进而得到TiO2/Bi2O3纳米复合体。通过气氛调控的表面光电压谱(SPS)等测试表明,表面负载适量的TiO2后能够提高Bi2O3光生电荷分离。可见光催化产氢和降解污染物测试结果进一步证明,表面负载适量的TiO2后可显著提高其可见光催化活性,其中Ti/Bi摩尔比为7%时具有最高的光催化活性。这主要归因于TiO2具有较为合适的导带能级位置,可以接收Bi2O3在可见光激发下所产生的高能级电子,从而抑制光生电子-空穴对复合,并且维持了高能级电子较高的还原能力。  相似文献   

13.
In this study, pure Bi2MoO6 was synthesized via a solvothermal method. A ZnCuAl-layered double hydroxide (LDH)/Bi2MoO6 (denoted as LDH/Bi2MoO6) nanocomposite was synthesized via a steady-state co-precipitation route using Bi2MoO6 as the matric material. LDH was deposited on the surface of Bi2MoO6 with a close contact interface. The specific surface area of the resulting LDH/Bi2MoO6 composite increased up to 19.1 m2∙g−1 owing to the stacking arrangement between LDH and the Bi2MoO6 nanosheets, resulting in the generation of a large number of reactive sites. In addition, the light absorption region of the LDH/Bi2MoO6 composite was larger than those of pure LDH and Bi2MoO6 because of the formation of a heterojunction structure and the possible quantum size effect. The photocatalytic performance of the as-prepared samples was evaluated by carrying out the degradation of rhodamine B (RhB) using them under visible light irradiation. Compared to pure LDH and Bi2MoO6, the LDH/Bi2MoO6 nanocomposite exhibited enhanced photocatalytic activity for the degradation of RhB. With an increase in the LDH content, the photocatalytic activity of the LDH/Bi2MoO6 composite first increased and then decreased. Although the addition of an optimum amount of LDH was beneficial for the generation of electron-hole pairs, excessive LDH on the surface of Bi2MoO6 decreased the visible light absorption ability of both the components, thus reducing photocatalytic activity of the composite. This indicates that an appropriate LDH:Bi2MoO6 molar ratio is necessary for obtaining LDH/Bi2MoO6 composites with excellent photocatalytic activity. Furthermore, the LDH/Bi2MoO6 composite showed high photocatalytic stability and reusability. The structure of the LDH/Bi2MoO6 composite remained almost unchanged even after four photodegradation cycles. The enhanced photocatalytic performance of the composite can be attributed to the combined effect of its heterojunction structure and high specific surface area, which are beneficial for effective separation of photogenerated charge carriers and the availability of a large number of active sites for photocatalysis. It was found that •OH and O2•− were the main reactive species, while e and h+ contributed little to the photodegradation process. The generation, transfer, and separation of photoinduced electrons and holes in the composites were investigated by transient photocurrent responses, electrochemical impedance spectroscopy Nyquist plots, and photoluminescence measurements. The results showed that the heterojunction structure of the composites played a key role in enhancing their photocatalytic activity. A possible photodegradation mechanism was proposed for the composite. This study will provide a facile approach for the preparation of LDH- and/or Bi2MoO6-based nanocomposites. The LDH/Bi2MoO6 nanocomposite prepared in this study showed huge potential to be used as a visible-light photocatalyst for degrading environmental pollutants.  相似文献   

14.
NO在Er2O3/Bi2O3催化剂上的程序升温分解   总被引:3,自引:0,他引:3  
NOx是造成大气污染的化学物质之一,因此,消除NOx是环境保护的一项重要任务,目前比较成熟的消除NOx工艺是用氨为还原剂和V2O5/TiO2为催化剂的选择催化还原(SCR)法[1],但其成本过高.  相似文献   

15.
较高的比表面积与稳定性使得二维Ti2C与Ti3C2结构在贵金属催化剂载体、锂离子电池、储氢材料等领域具有重要的应用前景. 研究Ti2C、Ti3C2的表面吸附活性有助于认识其表面特征. 第一性原理计算研究显示:Ti2C与Ti3C2对O、OH、F具有较强的吸附活性. 通过比较Ti2C、Ti3C2、Ti(001)、TiC(001)的表面电子结构, 我们发现Ti2C与Ti3C2较强的表面吸附活性来自于表面Ti 原子未极化的3d轨道. 这使得Ti2C、Ti3C2表面通常覆盖有O、F、OH. 吸附了O、OH基团的Ti2C与Ti3C2结构(Ti2CO2-2x(OH)2x、Ti3C2O2-2x(OH)2x)对Au原子的吸附能随OH比例的增大而增大.  相似文献   

16.
以硝酸铋为原料,氨水为沉淀剂,通过液相沉淀法制得前驱体Bi(OH)3,并将Bi(OH)3分别在不同温度和时间下焙烧。利用X射线衍射(XRD)、拉曼光谱、热重(TG)、扫描电子显微镜(SEM)、X射线光电子能谱(XPS)及紫外-可见漫反射光谱(UV-Vis DRS)详细研究了Bi(OH)3转变为Bi2O3的过程及相变过程中粒子形貌、大小、光吸收性质等。结果表明,前驱体Bi(OH)3经过焙烧之后,发生了如下的转变过程:Bi(OH)3→Bi5O7NO3β-Bi2O3/Bi5O7NO3β-Bi2O3/Bi5O7NO3/α-Bi2O3α-Bi2O3,而且转变过程伴随着粒子长大。在上述转变过程中,与Bi5O7NO3β-Bi2O3转变的过程相比,从β-Bi2O3α-Bi2O3相变过程更为迅速。此外,以光催化降解罗丹明B(RhB)为模型反应,考察了不同晶相的Bi2O3光催化活性,结果表明Bi5O7NO3β-Bi2O3材料具有优异的光催化性能,而α-Bi2O3具有较低的光催化活性。  相似文献   

17.
随着工业技术的飞速发展,大量有机污染物被应用于生活的各个领域,由此带来了严重的环境问题。众所周知,半导体光催化技术是一种有效且环境友好的降解去除典型污染物的方法,而光催化剂在该技术的应用中起着关键作用。因此,在光催化污染物降解领域,人们已经尝试研究了各种半导体材料。其中石墨相氮化碳(g-C3N4)是近年来公认的“明星”材料之一。因其独特的二维层状结构和良好的可见光响应而引起了人们的极大兴趣。由于带隙较窄(~2.7 eV)、能带结构可调以及良好的物理化学稳定性,g-C3N4对太阳光谱的吸收可达450 nm,具有一定的可见光光催化性能。然而,g-C3N4在去除抗生素和染料方面的降解效率仍然存在不足,例如光生电荷的快速复合以及空穴的氧化能力弱等。为了优化这种有前景的光催化材料,人们尝试了多种方法来改善g-C3N4的电子能带结构,例如金属/非金属元素掺杂、形貌调控和官能团修饰等。最近,人们提出了由两种N型半导体光催化剂组成的梯形异质结理念,它可以利用半导体材料更正的价带和更负的导带。相关结果表明,构筑梯形异质结是提高g-C3N4光催化活性的最有效方法之一。因此,本文通过简单的原位溶剂热生长法制备了新型0D/2D Bi4V2O11/g-C3N4梯形异质结光催化剂。Bi4V2O11/g-C3N4复合材料对去除土霉素(OTC)和活性红染料展示出了优异的光催化活性。尤其是BVCN-50复合材料对OTC和活性红的降解效率高达74.1%和84.2%,该过程的主要活性物种为·O2-。大幅增强的光催化性能归因于Bi4V2O11和g-C3N4之间形成的梯形异质结保持了光催化体系的强氧化还原能力(Bi4V2O11的强氧化能力和g-C3N4的强还原能力),并促进了光生电荷的空间分离。此外,金属Bi0的表面等离子共振效应可以拓宽异质结系统的光吸收范围。此外,基于高效液相色谱-质谱联用(LC-MS)分析,我们研究了OTC降解过程中可能的中间体和降解路径。这项工作为设计和制备g-C3N4基梯形异质结用于抗生素和活性染料降解提供了一种新的策略。  相似文献   

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