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1.
以质子化层状钙钛矿氧化物H1.9K0.3La0.5Bi0.1Ta2O7 (HKLBT)作为产氢催化剂, Pt/WO3作为产氧催化材料进行Z 型体系下完全分解水反应. 考察了不同载流子传递介质及不同载流子浓度对反应活性的影响. 结果表明, 以Fe2+/Fe3+为载流子传递介质时可以实现水的完全分解(H2/O2体积比为2:1), 8 mmol·L-1的FeCl3作为初始载流子传递介质时, 产氢、产氧活性分别为66.8和31.8 μmol·h-1, 氢氧体积比为2.1:1. 受光催化材料对载流子传递介质氧化还原速度的限制, 过高的载流子传递介质浓度并不能提高光催化活性.  相似文献   

2.
光催化Z型水分解反应有望发展成为一种生产太阳氢能的有效方法.将具有优异水氧化性能的自然光系统Ⅱ与人工半导体产氢材料进行耦合,以构建生物-人工杂化光催化Z型水分解反应体系,对于深入理解自然光合作用原理和促进人工太阳能转化具有重要意义.由于Fe(CN)_6~(3-)可从光系统Ⅱ接受电子,因此氧化还原电对Fe(CN)_6~(3-/4-)成为研究光系统Ⅱ基杂化Z型水分解体系时常用的电子体递.然而,在该Z型水分解反应中,正向的产氢反应经常受到由Fe(CN)_6~(3-)引起的逆反应的阻碍,致使水分解过程中产氢产氧失衡,不能实现有效的全分解水反应.本文通过在光系统Ⅱ杂化Z型水分解体系中的人工光催化剂ZrO_2/TaON上沉积产氢助催化剂PtCrOx,有效抑制了逆反应的发生,从而使体系实现了全分解水反应.实验发现,在光催化剂ZrO_2/TaON上沉积金属Pt作为产氢助催化剂时,以Fe(CN)_6~(4-)为电子供体的光催化产氢半反应基本没有产氢活性,而当沉积氧化物PtCrO_x作为产氢助催化剂时,产氢半反应活性可提高至~35μmolh–1.进一步研究发现,这种产氢活性的差异主要是由于两种不同助催化剂对于Fe(CN)_6~(3-)引起的氢气氧化逆反应的催化行为不同.金属Pt表面对于氢气具有吸附和活化作用,光催化反应中产生的氢气和Fe(CN)_6~(3-)在Pt-ZrO_2/TaON催化作用下发生快速的氧化还原逆反应;而由于PtCrO_x表面对氢气的吸附和活化作用较弱,上述氢气氧化的逆反应在PtCrO_x-ZrO_2/TaON存在时不发生.此外,在产氢过程中,光生电子虽然迁移到助催化剂PtCrO_x上,但PtCrO_x中高氧化态的Pt~Ⅱ和Pt~Ⅳ并未被还原,因此使PtCrO_x-ZrO_2/TaON具有稳定的光催化产氢反应活性.基于PtCrO_x-ZrO_2/TaON在Fe(CN)_6~(4-)作为电子供体时有效的产氢半反应,我们以Fe(CN)_6~(3-/4–)作为电子递体,将光系统Ⅱ与PtCrOx-ZrO_2/TaON耦合构建了生物-人工杂化Z型全分解水体系,通过调节Fe(CN)_6~(3-)/4–的初始浓度,最终实现了杂化体系的全分解水反应,产氢和产氧活性分别为~20μmol H_2 h~(–1)和~10μmol O_2 h~(–1).这为理解和抑制以Fe(CN)_6~(3-)/4–作为电子递体的光系统Ⅱ-人工杂化Z型水分解体系中的逆反应提供了新的思路.  相似文献   

3.
经过钛酸四丁酯强碱溶液中水解→水热→质子交换→焙烧路线制备出Ti O2(B)纳米带.采用HRTEM、FESEM、XRD、UV-Vis、BET和光解水产氢反应等对催化材料的微观表面结构、光吸收性能以及光催化性能进行了研究.结果表明:该路线制备的Ti O2(B)纳米带反应条件温和,便于大批量合成.通过改变实验参数实现晶型结构和微观形貌的调变,且不同晶型结构和微观形貌的材料进行光催化分解水产氢活性对比,它们的活性顺序为:NaxH2-xTi3O7·n H2纳米管Ti O2(B)Ti O2(anatase)Na2Ti6O13,表明Ti O2(B)纳米带是一类较好的光催化分解水制氢半导体材料.提出了Ti O2(B)纳米带的可能经历了Na2Ti3O7→H2Ti3O7→H2Ti6O13→H2Ti12O25→Ti O2(B)的形成过程.  相似文献   

4.
以Keggin型铁取代杂多阴离子PW11O39Fe(Ⅲ)(H2O)4-[PW11Fe(Ⅲ)(H2O)]代替传统光芬顿方法中的Fe3+作为光催化剂,构成一个新颖的光催化体系并用于水体生物难降解有机污染物硝基苯(NB)的降解.详细研究了在紫外光照射和H2O2存在下,PW11Fe(Ⅲ)(H2O)对NB降解的均相光催化作用.考察了NB初始浓度、溶液pH、H2O2和PW11Fe(Ⅲ)(H2O)浓度对光催化降解反应速率的影响.实验结果表明,1.0mmol·L-1PW11Fe(Ⅲ)(H2O)+5.0mmol·L-1H2O2+1.0mmol·L-1NB的中性溶液在300W汞灯照射下反应120min,NB的降解率达93%,总有机碳(TOC)去除约31%,显示了该新颖体系对NB光催化降解的高效性和优越性.  相似文献   

5.
硼掺杂对K2La2Ti3O10光催化分解水制氢活性的影响   总被引:2,自引:0,他引:2  
通过溶胶-凝胶法制备了层状钙钛矿复合氧化物K2La2Ti3O10 及B掺杂的K2La2Ti3O10, 并采用X射线衍射和紫外-可见漫反射光谱等对制得样品进行了表征. 以I-为电子给体,分别在紫外和可见光辐射下研究了所制得样品光催化分解水的产氢活性; 采用第一性原理,计算了B掺杂对K2La2Ti3O10 半导体能带结构和态密度的影响,从电子结构的变化揭示了掺杂引起光催化活性差异的原因. 结果表明, B的掺入能够提高K2La2Ti3O10 的光解水产氢活性且存在合适的B掺杂浓度. 当B与Ti的摩尔比为0.01∶1时,紫外光催化分解水产氢速率为151.7 μmol/(L·h), 比未掺杂B的K2La2Ti3O10 产氢速率提高166%; 当B与Ti的摩尔比为0.02∶1时,可见光催化分解水产氢速率为85.2 μmol/(L·h), 为未掺杂B的K2La2Ti3O10 产氢速率的5.2倍.  相似文献   

6.
开发高效、廉价的非贵金属助催化剂一直是光催化分解水产氢领域备受关注的研究热点.本文采用水热和煅烧法合成非贵金属CoP负载的CdS纳米棒复合光催化材料.当CoP负载的质量分数为15%时,CoP/CdS复合光催化剂的产氢性能最优,达4 729.38μmol·g-1·h-1,是单一CdS的83倍.产氢测试结果表明,CoP作为助催化剂可以有效地提升光生载流子的分离效率,从而提高光催化产氢性能.此外,本文还重点研究助催化剂CoP与CdS之间光生载流子分离、传输行为以及复合比例对CdS光催化产氢活性的影响规律及其光催化产氢活性增强机理.本工作为设计开发低成本、高效的光催化材料提供了新的策略.  相似文献   

7.
采用溶胶-凝胶法制备了Fe3+掺杂的Fe-K2La2Ti3O10.光催化剂,并通过X射线衍射(XRD)、紫外-可见漫反射(DRS)、X射线光电子能谱(XPS)等技术对其进行了表征和分析,考察了不同掺杂量对K2La2Ti3O10的性质及光催化分解水制氢活性的影响.结果表明,Fe-K2La2Ti3O10.在400-650 nm范围内显示强吸收,光谱响应扩展到可见光区(λ>400 nm),掺杂Fe3+后,K2La2Ti3O10.的可见光区的光催化制氢活性显著提高,掺杂量为nPe/nn=0.04时活性最佳,当催化剂用量为0.1 g,反应液为CH3OH(30 mL)+H2O(90 mL)时,产氢量达到1.92 μmol·h-1,为未掺杂时的4倍.  相似文献   

8.
光催化剂的晶体结构、电子结构、表面结构等都会对自身性质产生决定性的作用,因此认识和理解光催化材料自身结构和光催化性能之间的内在联系有助于设计合成更高效的光催化剂以及光催化复合体系.本文通过聚合络合法和溶胶凝胶水热法分别制备了镧和铬共掺杂的光催化剂,标记为和在碘化钠或甲醇作为牺牲试剂的产氢反应中,担载Pt的样品显示了光催化活性,而担载Pt的样品活性很低,甚至无活性.我们将这两种材料分别作为产氢光催化剂与三氧化钨耦合构建Z机制全分解水体系.研究发现,只有体系观察到了氢气和氧气的产生.在第一个10 h的循环反应中,产生的摩尔比为3.7,明显高于水分解为2的化学计量比.这是因为在反应起始时加入的是Na I,质子还原产氢反应占据了主导.随着氢气的不断产生,部分I-被氧化成了IO_3-,而IO_3-的存在就可以驱动氧气的产生,由于溶液中氧化还原电的共存就可以持续驱动氢气和氧气的同时生成.为了测试体系的稳定性,我们将前面产生的气体完全抽空后又进行第二次10 h的循环反应,总共进行三次循环反应.在第一次循环过程中氢气、氧气生成速率分别为9.1和2.4mmol h~(–1),第二次循环其速率分别为9.9和3.7mmol h~(–1),第三次循环速率分别达到10.4和4.9mmol h~(–1).此外,通过三次循环后摩尔比为2.1,接近水分解的化学计量比.结合紫外可见漫反射光谱和Mott-Schottky曲线可以确定两种样品的能带位置.从能带位置示意图可知,两种样品都具有足够负的导带电势还原质子产氢以及足够正的价带电势氧化水产氧.需要指出的是样品的导带电势比样品的导带电势更负,这意味着前者的导带电势更有利于还原质子产氢.霍尔效应测试的结果表明,两种样品均显示出n型半导体的特征,此外样品显示出比样品更快的载流子迁移率以及更高的载流子浓度.因此,两种样品不同的导带位置以及不同的载流子迁移率和载流子浓度很可能是造成两者光催化性能具有显著差异的主要原因.  相似文献   

9.
尚义  牛富军  沈少华 《催化学报》2018,39(3):502-509
光催化水分解反应是解决当前世界范围严峻的能源与环境问题的一种有效途径.光催化分解水过程可以分为产氢和产氧两个半反应.产氧反应过程复杂,动力学缓慢,是光催化分解水的限速步骤,因此需要探索性能优异的水氧化催化剂(WOCs)来提高产氧半反应的效率.钒酸铋近年来被广泛研究并应用于光催化产氧领域.钒酸铋拥有合适的带宽(2.4 eV)以及较好的稳定性,但是其应用受到其严重的电子空穴复合率、较低的电荷传输能力以及较差的反应动力学的限制.以往研究表明,通过构建复合光催化体系可以有效促进光生电荷的分离与传输,提高材料的光催化性能.因此,我们提出构建新型的BiVO_4/M(dca)_2(M=Co,Ni)复合体系,其中,BiVO_4作为光敏化剂,M(dca)_2作为水氧化催化剂.红外测试和紫外可见测试的结果表明,M(dca)_2通过物理吸附的方式附着在BiVO_4表面,形成BiVO_4/M(dca)_2复合光催化剂体系.复合体系的产氧活性相较于纯BiVO_4有明显的提升.光催化产氧测试结果表明,BiVO_4/Co(dca)2和BiVO_4/Ni(dca)_2复合体系的产氧活性分别可达508.1和297.7μmol/(h·g),而纯BiVO_4的产氧活性只有252.2μmol/(h·g).进一步的稳定性测试结果表明,BiVO_4/Co(dca)2复合体系在30 h的测试过程中能够保持稳定的活性.ICP-MS和XPS的表征结果证明了催化过程中分子催化剂良好的稳定性,排除了反应过程中生成氧化物进而促进产氧活性的可能.对该复合体系的一系列电化学表征证明,M(dca)_2有效改善了BiVO_4/电解液界面的电荷传输性能,从而促进了光催化产氧性能.其中,莫特-肖特基测试表明,M(dca)_2的加入增大了能带弯曲,提高了空穴传递的驱动力,阻抗谱的测试证明了复合体系具有较低的界面电阻,有利于载流子的迁移.通过对复合体系光生载流子分离和注入效率的表征,可以证明,在BiVO_4/M(dca)_2复合体系中,光生空穴能够有效地从BiVO_4迁移到M(dca)_2,进而参与光催化产氧反应并且光催化活性有明显的提升.其中,由于Co(dca)2能够更加有效地改善BiVO_4/电解质的水氧化反应动力学过程,其活性显著优于BiVO_4/Ni(dca)_2体系和纯BiVO_4.此外,基于实验结果和各项表征,我们进一步提出了BiVO_4/Co(dca)2光催化产氧反应的反应机理:光照条件下,BiVO_4中电子跃迁至导带,进而被牺牲剂消耗,而价带上的空穴则传递至分子催化剂进行化学反应,其中,分子催化的反应机理遵循水亲核攻击的模型.  相似文献   

10.
通过溶胶.凝胶法制备了层状钙钛矿结构的K2La2Ti3O10及硼族元素掺杂的K2La2Ti3O10,采用X-射线衍射(XRD)、紫外可见漫反射光谱(DRS)等对K2La2Ti3O10及硼族元素掺杂K2La2Ti3O10进行表征.以I-为电子给体、分别在紫外和可见光辐射下研究了K2La2Ti3O10及硼族元素掺杂K2La2Ti3O10光催化分解水的产氢活性;采用第一性原理,计算了硼族元素掺杂对K2La2Ti3O10半导体能带结构和态密度的影响.从电子结构的变化揭示了掺杂引起光催化活性差异的原因.研究结果表明,硼族元素的掺入能够改善和提高K2La2Ti3O10的光解水产氢活性;在B,Al,Ga,In与Ti的物质的量的比为0.01:1的情况下,K2La2Ti3O10紫外光催化分解水产氢速率分别为151.7、119.6、155和119.2 umol·L-1·h-1,比K2La2Ti3O10掺杂改性前产氢速率分别提高了166%、110%、172%和109%,可见光分解水的产氢速率为67.0、60.5、55.0和50.0umol·L-1·h-1,分别为K2La2Ti3O10掺杂改性前产氢速率的4、3.7、3.3和3倍.  相似文献   

11.
能源和环境危机是当今社会面临的两大关键课题,利用太阳光驱动化学反应、将太阳能转化为化学能是解决上述问题的重要措施。通过光催化分解水是直接利用太阳能生产氢燃料的有效策略。光催化水分解过程可以分为三个基元步骤:光吸收、电荷分离与迁移、以及表面氧化还原反应。助催化剂可有效提高电荷分离效率、提供反应活性位点并抑制催化剂光腐蚀的发生,进而提高水分解效率。助催化剂也可以通过活化水分子以提高表面氧化还原动力学,进而提升整体光催化反应的太阳能转换效率。本文综述了助催化剂在光催化反应中的重要作用以及目前常用的助催化剂类型,详细说明了在光催化全解水过程中双助催化剂体系的构建及作用机理,并根据限制全解水的关键因素提出了新型助催化剂的设计策略。  相似文献   

12.
The surface oxygenated intermediates present on TiO2 during photocatalytic water splitting have been identified and their accumulation on the titania surface is responsible for the deactivation of H2 evolution rate during photocatalysis.  相似文献   

13.
李义磊  王晓静  郝影娟  赵君  刘英  穆惠英  李发堂 《催化学报》2021,42(6):1040-1050,中插56-中插62
通过精细的纳米结构和化学组成控制,开发高效的全解水纳米光催化剂是一项具有挑战性的任务.此外,在光催化水氧化的半反应过程中,抑制纳米材料严重光腐蚀也是一项艰巨的任务,需要有效地提高纳米材料光生空穴转移的动力学.为此,本文通过可控的化学反应,设计制备了具有空间催化活性位点分布的Co-MnO2@CdS/CoS中空立方体顺序材料,并用作可见光催化全解水催化剂.采用MOFs作为自模板,经过连续的阴离子交换和阳离子交换反应,将Co掺杂的氧化助催化剂(纳米片Co-MnO2)和还原助催化剂(纳米粒子CoS)同时整合到中空的立方体CdS纳米材料中,使得超薄的二维纳米片Co-MnO2与立方体的内部界面均匀接触,能够有效地提高空穴的转移效率.同时,CoS纳米粒子均匀分散在CdS纳米材料的壁上,能够有效地转移光生电子,从而提高光生电子-空穴对的分离效率.实验测试表明,Co-MnO2@CdS/CoS中空立方体顺序材料可以为表面氧化-还原反应提供丰富的反应活性位点,同时有助于提高CdS纳米材料光生电子-空穴对的分离和迁移效率.特别是分散在CdS中空立方体壁面上的CoS纳米颗粒被确定为加速氢气生成的还原型助催化剂,能够促进水中氢离子生成氢气;而附着在CdS中空立方体内壁上的Co-MnO2纳米片被确定为促进氧演化动力学的氧化型助催化剂,能够促进水生成氧气.因此,在本实验中,得益于理想的纳米结构和化学组成方面的优势,Co-MnO2@CdS/CoS纳米立方体显示了高效的光催化全解水性能:在没有贵金属作为助催化剂存在时,它显示了很好的整体光催化水分解效率(735.4(H2)和361.1(O2)μmol h-1 g-1),超过了大多数文献报道的CdS基催化剂光解水效率.此外,以420 nm单波长光为入射光,进行了量子效率(AQE)测试,最优的Co-MnO2@CdS/CoS纳米材料的表观AQE达1.32%.本文合成的顺序材料为构筑具有活性位点空间分布的高效全解水催化剂提供了新的思路.  相似文献   

14.
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   

15.
The photocatalytic hydrogen evolution reaction (PHER) has gained much attention as a promising strategy for the generation of clean energy. As opposed to conventional hydrogen evolution strategies (steam methane reforming, electrocatalytic hydrogen evolution, etc.), the PHER is an environmentally friendly and sustainable method for converting solar energy into H2 energy. However, the PHER remains unsuitable for industrial applications because of efficiency losses in three critical steps: light absorption, carrier separation, and surface reaction. In the past four decades, the processes responsible for these efficiency losses have been extensively studied. First, light absorption is the principal factor deciding the performance of most photocatalysts, and it is closely related to band-gap structure of photocatalysts. However, most of the existing photocatalysts have a wide bandgap, indicating a narrow light absorption range, which restricts the photocatalytic efficiency. Therefore, searching for novel semiconductors with a narrow bandgap and broadening the light absorption range of known photocatalysts is an important research direction. Second, only the photogenerated electrons and holes that migrate to the photocatalyst surface can participate in the reaction with H2O, whereas most of the photogenerated electrons and holes readily recombine with one another in the bulk phase of the photocatalysts. Hence, tremendous effort has been undertaken to shorten the charge transfer distance and enhance the electric conductivity of photocatalysts for improving the separation and transfer efficiency of photogenerated carriers. Third, the surface redox reaction is also an important process. Because water oxidation is a four-electron process, sluggish O2 evolution is the bottleneck in photocatalytic water splitting. The unreacted holes can easily recombine with electrons. Sacrificial agents are widely used in most catalytic systems to suppress charge carrier recombination by scavenging the photogenerated holes. Moreover, the low H2 evolution efficiency of most photocatalysts has encouraged researchers to introduce highly active sites on the photocatalyst surface. Based on the abovementioned three steps, multifarious strategies have been applied to modulate the physicochemical properties of semiconductor photocatalysts with the aim of improving the light absorption efficiency, suppressing carrier recombination, and accelerating the kinetics of surface reactions. The strategies include defect generation, localized surface plasmon resonance (LSPR), element doping, heterojunction fabrication, and cocatalyst loading. An in-depth study of these strategies provides guidance for the design of efficient photocatalysts. In this review, we focus on the mechanism and application of these strategies for optimizing light absorption, carrier separation and transport, and surface reactions. Furthermore, we provide a critical view on the promising trends toward the construction of advanced catalysts for H2 evolution.  相似文献   

16.
Fe掺杂g-C_3N_4的制备及其可见光催化性能   总被引:1,自引:0,他引:1  
以硝酸铁和三聚氰胺为原料制备不同含铁量的Fe掺杂石墨氮化碳(g-C3N4).采用X射线衍射光谱(XRD)、紫外-可见(UV-Vis)光谱、傅里叶变换红外(FT-IR)光谱、电感耦合等离子体-原子发射光谱(ICP-AES)、荧光(PL)光谱、X光电子能谱(XPS)等分析手段对制备的催化剂进行了表征.结果表明,铁以离子形式镶嵌在gC3N4的结构单元中,影响了g-C3N4的能带结构,增加了g-C3N4对可见光的吸收,降低了光生电子-空穴对的复合几率.以染料罗丹明B的降解为探针反应系统研究了不同含铁量对g-C3N4在可见光下催化性能的影响.结果表明,m(Fe)/m(g-C3N4)=0.14%时,制备的Fe掺杂g-C3N4表现出最佳的光催化性能,120 min内罗丹明B的降解率高达99.7%,速率常数达到0.026 min-1,是纯g-C3N4的3.2倍.以叔丁醇、对苯醌、乙二胺四乙酸二钠为自由基(·OH)、自由基(O2-·)和空穴(h+VB)的捕获剂,研究了光催化反应机理.  相似文献   

17.
Athree-fold interpenetrated cadmium coordination polymer[Cd3(BTC)2(H2O)9]·2H2O(CP 1)(H3BTC=1,3,5-benzenetricar-boxylic acid) was selected and synthesized to investigate its photoelectric properties. CP 1 showed excellent sensitivity for Cr2O72- and Fe3+, low limit of detection(LOD:0.39 µmol/L for Cr2O72- and 1.72 µmol/L for Fe3+) and stability as electrochemical sensor. More importantly, fluorescence sensing studies indicated that CP 1 exhibits sensing activity for Fe3+, Fe2+, and MnO4- with good cyclic stability and selectivity. Low LOD and high-sensitivity capability of CP 1 make it a potential multifunctional photoelectric sensor.  相似文献   

18.
Z-Scheme photocatalysts as a research focus perform strong redox capability and high photocatalytic performance. WO3/KNbO3 photocatalysts were fabricated by ball milling method, and performed higher photocatalytic activity in liquid degradation(rhodamine B, methylene blue and bisphenol A), compared with WO3 or KNbO3 monomer. This is due to that Z-scheme heterojunction is formed between WO3 and KNbO3, and the holes photo-excited in valence band of KNbO3 are quickly combined with the electrons in conduction band of WO3. The electrons accumulated in conduction band of KNbO3 show high reducibility, thereby reducing O2 to ·O2-, and the holes in valence band of WO3 show high oxidative to oxidize H2O to ·OH, respectively. Furthermore, it is proved by means of electron spin resonance(ESR) spectra, terephthalic acid photoluminescence probing technique(TA-PL), and UV-Vis absorption spectra of nitroblue tetrazolium. This work indicates that the fabrication of Z-scheme structure can improve the photocatalytic activity by efficiently separating the photogenerated electrons and holes in the photocatalytic reaction system, which is helpful to deeply understand the migration mechanism of photoexcited carrier(band-band transfer and Z-scheme transfer) in heterojunction photocatalysts.  相似文献   

19.
研究了在不同的半导体体系(TiO2, CdS和C3N4)中, Ni2P光催化甲酸(HCOOH)分解制氢的助催化效应. 作为助催化剂, Ni2P与3种半导体形成的复合光催化剂均表现出良好的HCOOH分解制氢活性. Ni2P/TiO2, Ni2P/CdS, Ni2P/C3N4 3种光催化剂最优的产氢活性分别为41.69, 22.45和47.67 μmol·mg-1·h-1, 分别为纯TiO2, CdS和C3N4的3.8倍、 10倍和210倍, 表明Ni2P在光催化HCOOH分解制氢体系中具有普适性. 研究了光催化HCOOH分解制氢的机理, Ni2P的加入使光生电子从半导体转移至Ni2P, 提高了光生电子-空穴对的分离效率; Ni2P还促进了活性物种·OH的生成, 提高了光催化HCOOH分解的产氢速率.  相似文献   

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