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1.
封啸  任颜卫  江焕峰 《化学进展》2020,32(11):1697-1709
CO2的过度排放导致全球环境问题日益严重,如何将CO2有效地利用起来成为全世界的研究热点。相比于高耗能的CO2捕获和储存(CCS)技术,通过催化反应将CO2转化为有价值的能源燃料是同时解决能源危机和环境问题的有效途径。其中,使用太阳能作为能量来源的光催化CO2还原技术更具应用前景。但是目前CO2光还原催化剂仍然存在很多缺点,如可见光响应能力低、光生电子空穴对复合严重、CO2吸附量小、产物的选择性低以及在含水环境中的产氢竞争反应等。金属-有机框架(MOFs)是由金属离子/簇和有机配体构成的一类独特的多孔晶态材料,具有可调的多孔结构、电子迁移速度快、CO2吸附量大等优点,在光催化CO2还原领域具有广阔的应用潜力。现有方法主要是通过对MOFs的功能化修饰、与其他功能型材料复合等获得高效的光还原CO2的催化性能。本文主要对近年来MOFs基CO2光还原催化剂(单一MOFs、MOFs基复合材料以及MOFs衍生材料)的研究现状进行了分析和讨论,并对MOFs材料在光催化CO2还原中的发展趋势进行了展望。  相似文献   

2.
光催化CO2还原是利用太阳光和水将CO2转化为高价值化学品或燃料(如CO、甲醇、甲烷等),被认为是解决CO2问题的理想途径之一.CO2分子中C=O离解能高而活化困难,且光催化CO2还原涉及多质子耦合多电子转移过程且产物多样,因而研制效率高且选择性好的光催化剂是该技术的关键.聚合物氮化碳(PCN)作为一种结构可调的有机光催化剂,具有化学稳定性好且能带位置适宜于还原CO2的优势,是一种具有发展潜力的CO2还原光催化剂;但是PCN也存在因其禁带宽度较大而对可见光响应范围有限以及因其结构由三均三嗪单元构成而缺乏足够活性位点来吸附和活化CO2等不足.目前在提升PCN的光催化CO2还原性能方面已有不少研究,但所得的PCN基光催化剂在效率和选择性上仍处于较低水平.考虑到光催化CO2还原涉及复杂的热力学和动力学要求,对基于PCN的光催化剂进行精准设计和研究是非常必要的,这有望获得同时具...  相似文献   

3.
光催化还原CO2技术在CO2的治理与利用方面有着潜在的应用价值和良好的开发前景。该文简要综述了近年来用于光催化还原CO2反应的TiO2光催化剂材料,包括纯TiO2催化剂、负载型TiO2催化剂、金属改性TiO2催化剂、半导体复合TiO2催化剂和有机光敏化TiO2催化剂等,并介绍了各类催化剂光催化还原CO2的反应性能。  相似文献   

4.
通过光催化将二氧化碳(CO2)还原为可持续的绿色太阳能燃料是同时解决环境问题和能源危机的极具前景的方案.尽管迄今为止已经进行了广泛的研究,但实现高转化率、高选择性和高稳定性的光催化二氧化碳还原仍有许多障碍.如将水作为电子供体而非牺牲试剂,能够使反应的吉布斯自由能变ΔG>0,这对于真正实现理想化的人工光合作用至关重要,但同时也会为光催化还原CO2体系带来更多的挑战.我们首先简要介绍了光催化还原CO2的机理与挑战,而后根据目前光催化还原CO2在无牺牲剂体系中出现的问题总结了对应的策略以及最新的研究进展,包括能带结构的调整、助催化剂的负载、异质结的构建、 MOFs与COFs材料的设计等方面,最后对目前仍未解决的问题以及未来实现工业化应用的阻碍进行了总结.  相似文献   

5.
金属有机骨架(MOFs)具有较高的比表面积,丰富的金属/有机物种,较大的孔体积以及结构和成分可调节的特性,因此在太阳能燃料生产和污染物的光降解领域具有广泛的应用.根据其结构特点,研究者们主要从有机配体和孔道结构两方面对MOFs进行调控:(1)对有机配体进行修饰,如将杂原子、羟基、卤素原子、金属离子、生物大分子等引入MOFs结构;(2)将无机纳米粒子引入MOFs孔道内,如将贵金属、金属氧化物、多金属氧酸盐等纳米粒子封装在MOFs的孔道内.这些策略可有效增强MOFs的导电性、稳定性等,并进一步提高MOFs基催化剂的光催化性能.本文首先概述了四种经典MOFs类型,即UiO,ZIF,MIL和PCN系列的结构特点和催化性能.其次,总结了在设计MOFs基光催化材料过程中,根据不同类型MOFs特点着重考虑的五方面因素,即稳定性、能带结构、吸附作用、选择性和电导性.再次,讨论了提高MOFs基光催化剂活性的策略,如助催化剂修饰、构建异质结、配体或金属中心修饰和缺陷工程.最后,总结了MOFs基光催化材料在催化还原CO2、分解水制氢和降解有机污染物反应中的应用进展及影响其催化性能的主要因素.尽管MOFs基光催化材料研究已经取得了令人瞩目的进展,但对MOFs基光催化剂进行可控设计制备仍然存在挑战.如何实现纳米MOFs基光催化材料的制备与规模化生产、可调缺陷MOFs基光催化材料的精准设计、开发高稳定性的MOFs基光催化材料等仍需进一步探索.因此,未来需要从MOFs的纳米化合成、复合材料界面结构的精准调控、催化活性机制与稳定性关系等方面对MOFs基光催化材料进行深入的研究.  相似文献   

6.
碳中和是实现绿色可持续发展重要途径之一,以半导体光催化CO2还原.反应(CO2RR)为核心的人工光合成技术极具发展前景.石墨相氮化碳(g-C3N4)作为一种二维层状光催化剂,化学性质稳定,且满足CO2RR的热力学要求,但传统的g-C3N4光催化活性和选择性较低,这主要归因于高的电荷复合几率和低的光电子利用效率.采用二维碳化钛(Ti3C2Tx)等碳基助催化剂作为电子受体,促进光生载流子的快速分离与转移,成为提高g-C3N4光催化CO2RR效率的有效手段.然而,g-C3N4光催化剂与Ti3C2Tx助催化剂多数以2D/2D构型界面耦合,受限于二者界面弱的范德华相互作用、高的界面静电势垒和缓慢的界面电荷转...  相似文献   

7.
随着能源短缺和环境问题日益突出, 寻找清洁和可再生能源来替代化石燃料是本世纪科学家面临的最紧迫的任务之一. 为了实现我国“双碳”战略目标, 利用太阳能将二氧化碳(CO2)转化为清洁燃料和化学品是实现社会可持续发展的途径之一. 催化剂是CO2光还原技术的核心组成部分, 其可以吸附气态CO2分子, 在可见光照射下将CO2还原为一氧化碳(CO)、 甲酸(HCOOH)、 甲醇(CH3OH)或甲烷(CH4)等能源小分子. 目前, 新型CO2还原光催化体系的开发取得了很好的进展. 本文综合评述了近年来均相及非均相丰产金属卟啉类催化剂在光催化CO2还原中的研究进展, 并对在金属卟啉均相催化剂作用下, CO2光还原为CO或CH4的反应机理分别进行了介绍, 还讨论了金属卟啉基多孔有机聚合物与卟啉有机金属框架在光催化CO2方面的重要应用. 最后, 对可见光驱动卟啉类金属配合物催化的CO2还原的发展前景进行了展望.  相似文献   

8.
均相体系可见光催化还原CO2研究进展和面临挑战   总被引:1,自引:0,他引:1       下载免费PDF全文
利用太阳能将CO2还原成可以利用的燃料或者有机物,是洁净新能源的重要研究方向,具有很大的挑战性。均相体系作为光催化还原CO2最早研究的体系,对于CO2还原的分子机理研究、新型催化剂设计以及体系优化方面具有重要指导意义。近五年来,均相体系光催化还原CO2的研究取得了显著进展。本综述将对近五年来均相体系中光催化还原CO2取得的重要研究进展进行综述,并对均相光催化体系发展面临的挑战进行了总结。  相似文献   

9.
化石能源的过度使用造成CO2大量排放,导致了环境问题,同时引发了能源危机.新能源技术的快速发展为缓解上述问题提供了有效途径.光催化CO2转化技术因绿色环保、成本低廉、反应条件温和、操作安全可控而引起了研究者们的广泛关注.推动光催化CO2转化技术发展的关键在于高效光催化剂的精准设计与合成.目前,已经发展了多种光催化剂.铟基三元金属硫化物因具有合适的能带结构、较宽的吸光范围和独特的双金属位点而成为光催化CO2还原领域的研究热点之一.独特的双金属结构使其具有更丰富的活性位点,同时可以调控对关键中间体的吸附和解吸,进而提高CO2反应活性,并精准调控目标产物的选择性.然而,缓慢的电子传输行为和高载流子复合效率阻碍了CO2还原反应效率的提升,因此,目前距离实现光催化CO2还原技术的工业化应用仍有较大的差距.为了克服上述难题,科学家们对铟基三元金属硫化物进行了大量研究,以期通过修饰改性进一步提高催化效率和选择性.然而,目前有关铟基三元金属硫化物在光...  相似文献   

10.
郭红霞  崔继方  刘利 《应用化学》2020,37(3):256-263
利用太阳能和半导体光催化剂,将CO2光催化还原转变成碳氢燃料,是缓解温室效应、全球变暖、环境污染和能源危机等一系列问题的理想途径。 本文对氧空位增强的光催化还原CO2反应机理进行归纳,并分别针对还原产物为C1和C2组分的光催化体系进行概括总结。 作为CO2光催化还原过程的第一步,CO2捕获光催化剂导带上的电子生成CO2·-是反应的速控步骤。 氧空位的引入及其带来的金属配位不饱和点,利于CO2捕获电子生成CO2·-,进而促进CO2光催化还原过程。 最后,提出当前氧空位增强光催化还原CO2过程仍然存在的问题,且对发展前景进行展望。  相似文献   

11.
蓝奔月  史海峰 《物理化学学报》2014,30(12):2177-2196
传统化石能源燃烧产生CO2引起的地球变暖和能源短缺已经成为一个严重的全球性问题.利用太阳光和光催化材料将CO2还原为碳氢燃料,不仅可以减少空气中CO2浓度,降低温室效应的影响,还可以提供碳氢燃料,缓解能源短缺问题,因此日益受到各国科学家的高度关注.本文综述了光催化还原CO2为碳氢燃料的研究进展,介绍了光催化还原CO2的反应机理,并对现阶段报道的光催化还原CO2材料体系进行了整理和分类,包括TiO2光催化材料,ABO3型钙钛矿光催化材料,尖晶石型光催化材料,掺杂型光催化材料,复合光催化材料,V、W、Ge、Ga基光催化材料及石墨烯基光催化材料.评述了各种材料体系的特点及光催化性能的一些影响因素.最后对光催化还原CO2的研究前景进行了展望.  相似文献   

12.
Carbon dioxide (CO2) is one of the main greenhouse gases in the atmosphere. The conversion of CO2 into solar fuels (CO, HCOOH, CH4, CH3OH, etc.) using artificial photosynthetic systems is an ideal way to utilize CO2 as a resource and reduce CO2 emissions. A typical artificial photosynthetic system is composed of three key components: a photosensitizer (PS) to harvest visible light, a catalyst (C) to catalyze CO2 or protons into carbon-based fuels or H2, respectively, and a sacrificial electron donor (SED) to consume the holes generated in the PS. In most cases, the PS and catalyst are two different components of a system. However, some components that possess both light harvesting and redox catalysis functionalities, e.g., nano-semiconductors, are referred to as photocatalysts. During photocatalysis, the PS is typically excited by photons to generate excited electrons. The excited electrons in the PS are transferred to the catalyst to generate a reduced catalyst. The reduced catalyst is used as an active intermediate to perform CO2 binding and transformation. The PS can be recovered through a reaction with the SED. Nano-semiconductors have been used as photosensitizers and/or photocatalysts in photocatalytic CO2 reduction systems owing to their excellent photophysical and photochemical properties and photostability. CdS and CdSe nano-semiconductors, such as quantum dots, nanorods, and nanosheets, have been widely used in the construction of photocatalytic CO2 reduction systems. Systems based on CdS or CdSe nano-semiconductors can be classified into three categories. The first category is systems based on CdS or CdSe photocatalysts. In these systems, CdS or CdSe nano-semiconductors function as photocatalysts to catalyze CO2 reduction without a co-catalyst under visible-light irradiation. The CO2 reduction reaction occurs at the surface of the CdS or CdSe nano-semiconductors. The second category is systems based on CdS or CdSe composite photocatalysts. CdS or CdSe nano-semiconductors are combined with functional materials, such as reduced graphene oxide or TiO2, to prepare composite photocatalysts. These composite photocatalysts are expected to improve the lifetime of the charge separation state and inhibit the photocorrosion of the nano-semiconductors during photocatalysis. The third category is hybrid systems containing a CdS nano-semiconductor and molecular catalysts, such as nickel and cobalt complexes and iron porphyrin. In these hybrid systems, CdS functions as a photosensitizer and the CO2 reduction reaction occurs at the molecular catalyst. This review article introduces the construction of artificial photosynthetic systems and the photocatalytic mechanism of nano-semiconductors, and summarizes the representative works in the three aforementioned categories of systems. Finally, the challenges of nano-semiconductors for photocatalytic CO2 reduction are discussed.  相似文献   

13.
《中国化学快报》2021,32(10):2975-2984
Metal-organic frameworks (MOFs) are currently popular porous materials with research and application value in various fields. Aiming at the application of MOFs in photocatalysis, this paper mainly reviews the main synthesis methods of MOFs and the latest research progress of MOFs-based photocatalysts to degrade organic pollutants in water, such as organic dyes, pharmaceuticals and personal care products, and other organic pollutants. The main characteristics of different synthesis methods of MOFs, the main design strategies of MOFs-based photocatalysts, and the excellent performance of photocatalytic degradation of organic pollutants are summarized. At the end of this paper, the practical application of MOFs, the current limitations of MOFs, the synthesis methods of MOFs, and the future development trend of MOFs photocatalysts are explained.  相似文献   

14.
S型异质结不但可以提高载流子的分离效率,还可以维持较强的氧化还原能力。因此,构建S型异质是提高光催化二氧化碳还原反应的有效途径。本研究通过静电自组装法构建了具有近红外光响应(> 780 nm)的二维BiOBr0.5Cl0.5纳米片和一维WO3纳米棒S型异质结光催化剂,并用于高效还原二氧化碳。能带位置和界面电子相互作用的综合分析表明:在光催化二氧化碳还原反应过程中,BiOBr0.5Cl0.5/WO3遵循S型电子转移路径;不仅提高了载流子的高效分离,还维持了两相(BiOBr0.5Cl0.5和WO3)较高的氧化还原能力。此外,二维纳米片/一维纳米棒的结构使得半导体之间具备良好的界面接触,有利于载流子的分离,且暴露更多的活性位点,最终提高催化效率。结果显示,BiOBr0.5Cl0.5/WO3异质结催化剂表现出较高的CO2还原能力和CO选择性,CO的产率高达16.68 μmol∙g-1∙h-1,分别是BiOBr0.5Cl0.5的1.7倍和WO3的9.8倍。本工作为构建S型二维/一维异质结光催化剂高效还原二氧化碳提供了新的思路。  相似文献   

15.
CO_2是最常见的化合物,作为潜在的碳一资源,可用于制备多种高附加值的化学品,如一氧化碳、甲烷、甲醇、甲酸等。传统的热催化转化CO_2方法能耗高,反应条件苛刻。因此,如何在温和条件下高效地将CO_2转化成高附加值的化学品,一直以来是催化领域的研究热点和难点之一。光催化技术反应条件温和、绿色环保。然而,纯光催化反应普遍存在太阳能利用效率有限,光生载流子分离效率低等问题。针对上述问题,在光催化的基础上引入电催化,可以提高载流子的分离效率,在较低的过电位下,实现多电子、质子向CO_2转移,从而提高催化反应效率。总之,光电催化技术可以结合光催化和电催化的优势,提高CO_2催化还原反应效率,为清洁、绿色利用CO_2提供了一种新方法。本文依据光电催化CO_2还原反应基本过程,从光吸收、载流子分离和界面反应等三个角度综述了光电催化反应的基本强化策略,并对未来可能的研究方向进行了展望。  相似文献   

16.
The acceleration of industrialization and the continuous upgradation of consumption structure has increased the atmospheric content of CO2 far beyond the past levels, leading to a serious global environmental problem. Photocatalytic reduction of CO2 is one of the most promising methods to solve the problem of rising atmospheric CO2 content. The core of this technology is to develop efficient, environment-friendly, and affordable photocatalysts. A photocatalyst is a semiconductor that can absorb photons from sunlight and produce electron-hole pairs to initiate a redox reaction. Owing to their low specific surface areas, significant electron-hole recombination, and less surface-active sites, bulk photocatalysts are not satisfactory. Ultrathin layered materials have shown great potential for photocatalytic CO2 reduction owing to their characteristics of large specific surface area, a large number of low-coordination surface atoms, short transfer distance from the inside to the catalyst surface, along with other advantages. Photoexcited electrons only need to cover a short distance to transfer to the nanowafer surface, and the speed of migrating electrons on the nanowafer surface is much higher than that in the layers or in the bulk catalyst. The ultrathin structure leads to significant coordinative unsaturation and even vacancy defects in the lattice structure of the atoms; while the former can be used as active sites for CO2 adsorption and reaction, the latter can improve the separation of the electron-hole pair. This review summarizes the latest developments in ultrathin layered photocatalysts for CO2 reduction. First, the photocatalytic reduction mechanism of CO2 is introduced briefly, and the factors governing product selectivity are explained. Second, the existing catalysts, such as g-C3N4, black phosphorus (BP), graphene oxide (GO), metal oxide, transition metal dichalcogenides (TMDCs), perovskite, BiOX (X = Cl, Br, I), layered double hydroxide (LDH), 2D-MOF, MXene, and two-dimensional honeycomb-like Ge―Si alloy compounds (gersiloxenes), are classified. In addition, the prevalent preparation methods are summarized, including mechanical stripping, gas stripping, liquid stripping, chemical etching, chemical vapor deposition (CVD), template method, self-assembly of surfactant, and the intermediate precursor method of lamellar Bi-oleate complex. Finally, we introduced the strategy of improving photocatalyst performance on the premise of maintaining its layered structure, including the factors of thickness adjustment, doping, structural defects, composite, etc. The future opportunities and challenges of ultrathin layered photocatalysts for the reduction of carbon dioxide have also been proposed.  相似文献   

17.
能源问题一直是关乎人类命运的重要问题,光催化制氢被认为是有望解决这一问题的潜在途径之一.金属有机框架(MOFs)由于其多孔、高比表面积、带隙可调等特性,在光催化制氢方面得到了广泛关注.我们综述了近些年来在金属-有机骨架材料光催化制氢领域的各种改性方法 ,包括修饰有机连接配体、修饰金属中心、金属纳米粒子沉积、染料敏化与其他功能材料结合等.概括了改性后的MOFs光催化制氢性能,指出了MOFs基光催化制氢存在的问题和可能的解决思路,并展望了MOFs基光催化制氢剂的绿色未来.  相似文献   

18.
Photocatalytic reduction of CO2 to hydrocarbon compounds is a promising method for addressing energy shortages and environmental pollution. Considerable efforts have been devoted to exploring valid strategies to enhance photocatalytic efficiency. Among various modification methods, the hybridization of different photocatalysts is effective for addressing the shortcomings of a single photocatalyst and enhancing its CO2 reduction performance. In addition, metal-free materials such as g-C3N4 and black phosphorus (BP) are attractive because of their unique structures and electronic properties. Many experimental results have verified the superior photocatalytic activity of a BP/g-C3N4 composite. However, theoretical understanding of the intrinsic mechanism of the activity enhancement is still lacking. Herein, the geometric structures, optical absorption, electronic properties, and CO2 reduction reaction processes of 2D/2D BP/g-C3N4 composite models are investigated using density functional theory calculations. The composite model consists of a monolayer of BP and a tri-s-triazine-based monolayer of g-C3N4. Based on the calculated work function, it is inferred that electrons transfer from g-C3N4 to BP owing to the higher Fermi level of g-C3N4 compared with that of BP. Furthermore, the charge density difference suggests the formation of a built-in electric field at the interface, which is conducive to the separation of photogenerated electron-hole pairs. The optical absorption coefficient demonstrates that the light absorption of the composite is significantly higher than that of its single-component counterpart. Integrated analysis of the band edge potential and interfacial electronic interaction indicates that the migration of photogenerated charge carriers in the BP/g-C3N4 hybrid follows the S-scheme photocatalytic mechanism. Under visible-light irradiation, the photogenerated electrons on BP recombine with the photogenerated holes on g-C3N4, leaving photogenerated electrons and holes in the conduction band of g-C3N4 and the valence band of BP, respectively. Compared with pristine g-C3N4, this S-scheme heterojunction allows efficient separation of photogenerated charge carriers while effectively preserving strong redox abilities. Additionally, the possible reaction path for CO2 reduction on g-C3N4 and BP/g-C3N4 is discussed by computing the free energy of each step. It was found that CO2 reduction on the composite occurs most readily on the g-C3N4 side. The reaction path on the composite is different from that on g-C3N4. The heterojunction reduces the maximum energy barrier for CO2 reduction from 1.48 to 1.22 eV, following the optimal reaction path. Consequently, the BP/g-C3N4 heterojunction is theoretically proven to be an excellent CO2 reduction photocatalyst. This work is helpful for understanding the effect of BP modification on the photocatalytic activity of g-C3N4. It also provides a theoretical basis for the design of other high-performance CO2 reduction photocatalysts.   相似文献   

19.
Photocatalytic CO2 reduction to C1 fuels is considered to be an important way for alleviating increasingly serious energy crisis and environmental pollution. Due to the environment-friendly, simple preparation, easy formation of highly-stable metal-nitrogen(M-Nx) coordination bonds, and suitable band structure, polymeric carbon nitride-based single-atom catalysts(C3N4-based SACs) are expected to become a potential for CO2 reduction under visible-light irradiation. In this review, we summarize the recent advancement on C3N4-based SACs for photocatalytic CO2 reduction to C1 products, including the reaction mechanism for photocatalytic CO2 reduction to C1 products, the structure and synthesis methods of C3N4-based SACs and their applications toward photocatalytic CO2 reduction reaction(CO2RR) for C1 production. The current challenges and future opportunities of C3N4-based SACs for photoreduction of CO2 are also discussed.  相似文献   

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