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1.
将大气中的二氧化碳(CO2)转化为燃料或高附加值化学品是降低大气中CO2含量、 减缓温室效应的有效途径之一. 光催化CO2化学转化条件温和, 能耗低, 在CO2转化中占有重要地位. 金属-有机框架(MOF)基材料由于具有比表面积大、 光电性质优良和可调节性强等特点, 是CO2光催化转化的常用催化剂之一. 本文综合评述了近两年MOF基材料在光催化CO2还原反应、 CO2环加成反应和CO2羧基化反应中的应用, 阐释了MOF基材料在CO2光催化转化中的优势和局限性, 并展望了其未来发展.  相似文献   

2.
黄健  张文珍 《有机化学》2023,(7):2580-2581
<正>CO2是一种温室气体,也是一种储量丰富、无毒、廉价、可再生的理想C1资源,然而CO2具有较高的热力学稳定性和动力学稳定性.因此将CO2通过化学手段转化为具有高附加值的精细化学品,是近年来研究的热点[1].二元羧酸及其衍生物在材料科学和生物医学领域有着诸多应用[2],通过亲核试剂与CO2发生羧化反应可以高效合成二酸[3].  相似文献   

3.
随着二氧化碳(CO2)排放量的不断增加, 全球变暖和气候变化的加剧对人类的生存环境产生了巨大的影响. CO2作为廉价、 可再生的碳氧资源, 将其转化为高附加值化学品是绿色化学及能源领域的重要研究课题之一, 受到广泛关注. Pd基催化剂由于具有优异的加氢能力以及良好的抗烧结、 抗毒化性能, 作为CO2催化转化最有前途的催化剂被广泛应用和研究. 本文主要对Pd基催化剂上CO2加氢制备HCOOH, CO, CH4和甲醇等小分子能源化合物的研究进展进行综合评述, 重点关注Pd基催化剂上CO2分子的吸附/活化位点、 催化剂的金属-载体强相互作用及表界面组成等对催化剂活性和选择性的影响以及催化反应机理.  相似文献   

4.
二氧化碳(CO2)是一种理想的C1合成子. 利用其参与化学转化合成羧酸和含羰基杂环等具有高附加值的产品, 具有重要意义. 另一方面, 烯烃的双官能团化反应是有机合成化学中的一类重要反应, 可以将简单易得的烯烃快速高效地转化为结构多样性的重要化合物. 然而, 由于CO2反应活性较低, 而且烯烃官能团化反应的选择性难以控制, CO2参与的烯烃双官能团化反应具有较高的挑战性. 近年来, 自由基化学的蓬勃发展为该类反应的开发提供了新的策略, 实现了一些重要转化反应. 基于此, 从CO2参与烯烃的氧-烷基化反应、碳羧基化反应、硅羧基化反应、硫羧基化反应以及双羧基化反应等反应入手, 全面总结和深入分析了最近几年CO2参与的自由基型烯烃双官能团化反应进展; 在介绍上述进展的同时, 重点阐述了其可能经历的四类自由基化学历程. 最后对该领域的未来发展方向进行了展望, 希望为该领域的进一步发展提供一些思路.  相似文献   

5.
CO2加氢对于CO2转化制备高附加值化学品和燃料以实现二氧化碳利用及能源储存至关重要。CO2加氢包括甲烷化、逆水煤气变换、甲醇化和CO2直接费托合成等。碳化钼,尤其是其二维材料,由于其低成本和良好的性能而备受关注。在CO2加氢反应中,由于碳的渗入,导致晶格膨胀以及价电子增加,碳化钼基催化剂展现出了类似于贵金属催化剂的性质。碳化钼可以通过程序升温渗碳法、选择性蚀刻法、机械合金合成法、化学气相沉积法、原位热渗碳法以及溶液相合成法等来制备。到目前为止,学者已经对基于碳化钼的材料的CO2转化进行大量研究,这些材料具有良好的CO2转化活性和对目标产物的选择性。碳化钼材料的催化性能可以通过调节碳化钼中的C/Mo比、在碳化钼与负载金属之间建立强的金属-载体相互作用以及调整材料的界面结构来实现。然而,基于碳化钼的热催化CO2转化仍处于初级阶段。本文综述基于碳化钼的热催化CO2加氢制备高附加值化学品和燃料的研...  相似文献   

6.
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   

7.
二氧化碳(CO2)作为一种无毒、廉价、可再生的碳一合成子,被广泛用于合成重要的精细化学品.芳基乙酸广泛存在于许多药物分子中,是一类重要的羧酸分子.苄位卤代物具有商业可得且价格低廉的优势,是合成芳基乙酸的理想底物.因此,以苄位卤代物和CO2为原料合成芳基乙酸具有很大的吸引力.传统的合成方法需要将苄基卤化物预先制备成水、氧敏感的苄位金属试剂,再与CO2发生羧基化反应,但因兼容性较差,操作繁琐,限制了实际应用.另外,苄位卤化物与CO2的直接电羧基化反应也有报道,但存在需要牺牲阳极、使用贵金属电极和支持电解质等不足.此外,过渡金属催化苄位卤代物与CO2羧基化反应得到长足发展,但也存在底物范围有限、官能团兼容性不佳、使用金属还原剂和存在重金属污染等问题.近年来,可见光催化已经成为实现CO2高效转化的有力工具,具有绿色环保、官能团兼容性好等特点.如果能利用可见光催化实现苄位卤代物与CO2的还原羧基化,将可以进一步提升该类转化的底物适用性和反应的实...  相似文献   

8.
近些年来,将CO2转化为高附加值化学品受到广泛关注。其中,CO2、炔丙醇和亲核试剂的三组分反应可用于制备用途广泛的羰基化合物,该方法具有步骤经济性、原子经济性等优点。由于CO2分子具有热力学稳定性和动力学惰性,多数CO2参与的化学反应在热力学上不支持。然而,CO2、炔丙醇和双亲核试剂三组分反应是热力学有利的CO2转化反应,实现了邻二醇或氨基醇和CO2到环状碳酸酯以及2-噁唑啉酮的高效转化。本综述旨在于总结并讨论近年来CO2、炔丙醇和亲核试剂三组分反应制备多种羰基化学物的主要进展。  相似文献   

9.
周睿  韩娜  李彦光 《电化学》2019,25(4):445-454
二氧化碳(CO2)作为一种经济、安全、可再生的碳资源化合物,其高效回收利用一直是全社会关注的焦点. 利用电化学方法,将CO2还原转化生成一系列高附加值的化学品或燃料,对于缓解能源与环境双重压力具有重要的现实意义. 本论文介绍了电化学CO2还原反应的基本原理与过程,综述了近年来铋基催化材料的发展现状,重点对这类催化材料的制备合成、结构调控、催化反应机理研究等方面进行了总结,最后对其未来发展方向进行了探讨与展望.  相似文献   

10.
将CO2作为可利用的碳资源催化转化为高附加值化学品或液体燃料对于节能减排和碳资源的循环利用具有重要意义。由于CO2分子的化学惰性及高的C–C键耦合能垒,导致CO2的选择性活化及可控转化极具挑战。近年来,随着研究的不断深入及串联催化体系的构建,世界各国研究者在CO2催化加氢制备高附加值烃类方面取得了突破性的研究进展。然而,在串联催化过程中,Fe基催化剂或金属氧化物与分子筛间的协同匹配、活性组分间的组装方式、分子筛的孔道结构及酸性、以及反应条件及气氛均对CO2加氢的产物分布影响显著。有鉴于此,本综述针对CO2加氢制备高附加值烃(低碳烯烃、异构烷烃、汽油及芳烃)的串联催化反应体系,重点介绍串联催化剂上影响CO2活化、转化及目标产物生成的关键因素以及串联催化剂的稳定性,并在此基础上对CO2催化加氢的未来和前景进行总结和展望。  相似文献   

11.
二氧化碳是众所周知的温室气体, 也是重要的C1资源, 利用二氧化碳合成高附加值化合物具有重要意义. 其中, 羧酸类化合物广泛存在于天然产物、 药物、 日化品及工业原料中, 是一类非常重要的化合物. 因此, 利用二氧化碳合成羧酸类化合物是一个重要的研究方向; 另一方面, 由于二氧化碳反应活性低, 其转化通常需要高温等苛刻条件. 为解决该问题, 人们利用可见光作为能量来源, 可以在温和条件下实现二氧化碳的高效转化. 鉴于该方向近年来的蓬勃发展, 本文主要对可见光促进二氧化碳参与的羧基化反应进行介绍和总结, 按烯烃、 炔烃、 醛酮、 亚胺和(类)卤代物等重要的化工原料分类阐述, 并将各个反应的特点和机理将作为阐述的重点. 本文也对该领域的未来发展方向进行了展望, 希望为该领域的进一步发展提供参考.  相似文献   

12.
The efficient utilization of carbon dioxide (CO2) as a C1 feedstock is of great significance for green and sustainable development. Therefore, the efficient chemical conversion of CO2 into value-added products has recently attracted a lot of research attention in recent years. The transformation of CO2 generally requires high-energy substrates, specific catalysts, and harsh reaction conditions due to its high thermodynamic stability and kinetic inertness. Consequently, several efforts have been dedicated toward the development of high-performance catalysts and new reaction routes for CO2 conversion over the last few decades. To date, many routes of convert CO2 into value-added chemicals have been proposed, together with the development of heterogeneous and homogeneous catalysts. Among the advanced catalysts reported to date, ionic liquids (ILs) have been widely investigated and show great potential for the efficient, selective, and economical conversion of CO2 into highly valuable products under mild conditions, even under ambient conditions. Some task-specific ILs have been designed with unique functional groups (e.g., —OH, —SO3H, —NH2, —COOH, and —C≡N), which can act as the solvent, absorbent, activating agent, catalyst, or cocatalyst to realize the transformation of CO2 under metal-free and mild conditions. In addition, a variety of catalytic systems composed of ILs and metal catalysts have also been reported for the transformation of CO2, in which the combination of the IL and metal catalyst is responsible for CO2 conversion with high efficiency. In this review article, we summarize the recent advances in IL-mediated CO2 transformation into chemicals prepared via C—O, C—N, C—S, C—H, and C—C bond forming processes. ILs that can chemically capture CO2 with high capacity are first introduced, which can activate CO2 via the formation of IL-based carbonates or carbamates, thus realizing the transformation of CO2 under metal-free and mild conditions. Recent progress in IL-mediated CO2 transformations to form carbonates and various kinds of N- and S-containing compounds (e.g., oxazolidinones, ureas, benzimidazolones, formamides, methylamines, benzothiazoles, and other chemicals) as well as CO2 hydrogenation to give formic acid, methane, acetic acid, low-carbon alcohols, and hydrocarbons has been summarized in this review with a focus on the reaction routes, catalytic systems, and reaction mechanism. In these reactions, ILs can simultaneously activate the substrate via strong H-bonding in addition to activating CO2, and the cooperative effects among the ionic and molecular species and metal catalysts accomplish the reactions of CO2 with various kinds of substrates to afford a wide range of value-added chemicals. Finally, the shortcomings and perspectives of ILs are discussed. In short, IL-mediated CO2 transformations provide green and effective routes for the synthesis of high-value chemicals, which may have great potential for a wide range of applications.  相似文献   

13.
单原子催化剂在光催化二氧化碳还原中的研究进展   总被引:1,自引:0,他引:1  
通过光催化技术将二氧化碳转化成增值的含碳化学品或燃料是解决能源危机和温室效应的一种可持续性方法. 开发高效、 廉价及高稳定性的光催化剂是提高光催化二氧化碳还原(CO2RR)效率所面临的一大挑战. 单原子催化剂由于具有原子利用率高及电子环境可调等特性而在催化领域被广泛研究. 在光催化二氧化碳还原中, 金属单原子的加入不仅可调节光催化剂的能带结构及吸光性能等物理性质, 还可以有效提高其光生电荷转移效率, 并为研究光催化反应机理提供理想的平台. 近年来, 单原子光催化剂在二氧化碳还原领域的研究发展迅速. 本文综合评述了单原子催化剂在光还原二氧化碳反应中的研究进展, 介绍了不同载体的单原子催化剂的典型研究成果, 并展望了未来的研究趋势.  相似文献   

14.
The efficient utilization of the greenhouse gas CO2 as a C1 feedstock can effectively reduce its emission and create economic value. Hence, the efficient chemical conversion of CO2 has been receiving intense attention. Due to the extremely low energy level of the CO2 molecule, the high energy barrier is the primary challenge for the chemical conversion of CO2. The chemical conversion of CO2 is mainly carried out through non-reductive transformation in industrial. Yet, the new route of chemical synthesis based on CO2 reductive transformation is an interesting topic to expand its resource utilization. In this context, homogeneous reductive carbonylation is a hot topic for the utilization of CO2 via reductive transformation. In this process, the metal hydride intermediate derived from the activation of the hydrogen source is crucial to the CO2 reduction. Hydrogen, a clean source with high atom economy, can be used as a reducing agent for the reductive conversion of inert CO2 through carbonylation, to construct C―O, C―N, and C―C bonds and to synthesize aldehyde/alcohol, carboxylic acid, ester, amide, and other chemicals. These expand the scope of CO2 high-value utilization and show great potential application in terms of resource utilization and environmental protection. This CO2 utilization process is thought to involve cascading catalytic reactions of CO2 reduction and carbonylation. The catalytic systems require the corresponding catalysts to efficiently promote each step and effectively inhibit undesired side reactions. Recently, considerable progress has been made in the homogeneous reductive carbonylation of CO2 with H2. However, this kind of reaction is mostly of the cascade type, and hence, requires harsh conditions and noble metal catalysts. The chemoselectivity is low because of the multiple competing reactions. In addition, due to the steric hindrance and electronic effects of the substrate, there are limitations on the types of substrates that can be employed. With the development of new characterization techniques and theoretical calculations, some progress has been made in revealing the reaction mechanism and in the activation of the carbon-oxygen bonds of CO2. Therefore, there is an urgent need to develop a more efficient catalytic system that requires mild conditions for reductive carbonylation. In this review, we provide an overview of the groundbreaking studies and the recent breakthroughs that have demonstrated the potential of metal catalysts to utilize the combination of CO2 and H2 as a C1 synthon, including olefin carbonylation, amine carbonylation, and alcohol/ether carbonylation, while highlighting the effect of different types of metal catalysts on the reaction. We conclude with a perspective on the future prospects of the homogeneous reductive carbonylation of CO2 with H2, providing readers a snapshot of this rapidly evolving field.  相似文献   

15.
二氧化碳电还原反应(CO2RR)在改善能源利用方式、 实现可持续碳循环以及生产高附加值液体燃料和化学品等方面具有广阔的应用前景, 近年来受到广泛关注. 有机配体保护的金团簇具有确定的晶体结构, 其不同的尺寸、 配体及组成可以有效调控氧化还原电位, 作为一种独特的模型催化剂, 为探索原子水平的CO2RR反应机理提供了新机遇. 本文综合评述了纯金团簇和异金属原子掺杂的金团簇催化CO2RR的研究进展, 包括金团簇的电荷、 尺寸、 配体以及掺杂对CO2RR性能的影响, 重点讨论了CO2RR的反应机理, 总结了金团簇在CO2RR中所面临的挑战, 并展望了金团簇在CO2RR中未来的研究方向和发展前景.  相似文献   

16.
Industrial revolution has led to increased combustion of fossil fuels. Consequently, large amounts of CO2 are emitted to the atmosphere, throwing the carbon cycle out of balance. Currently, the most effective method to reduce the CO2 concentration is direct CO2 capture from the atmosphere and pumping of the captured CO2 deep underground or into the mid-ocean. The transformation of CO2 into high-value chemicals is an attractive yet challenging task. In recent years, there has been much interest in the development of CO2 utilization technologies based on electrochemical CO2 reduction, photochemical CO2 reduction, and thermal CO2 reduction, and CO2 valorization has emerged as a hot research topic. In electrochemical CO2 reduction, the cathodic reaction is the reduction of CO2 to value-added chemicals. The anodic reaction should be the oxygen evolution reaction, and water is the only renewable and scalable source of electrons and protons in this reaction. There is a plethora of research on the use of various metals to catalyze this reaction. Among these, Cu-based materials have been demonstrated to show unique catalytic activity and stability for the electrochemical conversion of CO2 to valuable fuels and chemicals. Moreover, the solar-driven conversion of CO2 into value-added chemical fuels has attracted great attention, and much effort is being devoted to develop novel catalysts for the photoreduction of CO2, especially by mimicking the natural photosynthetic process. The key step in the photocatalytic process is the efficient generation of electron-hole pairs and separation of these charge carriers. The efficient separation of photoinduced charge carriers plays a crucial role in the final catalytic activity. Compared with CO2 reduction via electrocatalysis and photocatalysis, thermal reduction is more attractive because of its potential large-scale application in the industry. Heterogeneous nanomaterials show excellent activity in the electrocatalytic, photocatalytic, and thermal catalytic conversion of CO2. However, nanostructured materials have drawbacks on the investigation of the intrinsic activity of the active sites. In recent years, single-site catalysts have become popular because they allow for maximum utilization of the metal centers, show specific catalytic performance, and facilitate easy elucidation of the catalytic mechanism at the molecular level. Accordingly, numerous single-site catalysts were developed for CO2 reduction to produce value-added chemicals such as CO, CH4, CH3OH, formate, and C2+ products. Value-added chemicals have also been synthesized with the aid of amines and epoxides. This review summarizes recent state-of-the-art single-site catalysts and their application as heterogeneous catalysts for the electroreduction, photoreduction, and thermal reduction of CO2. In the discussion, we will highlight the structure-activity relationships for the catalytic conversion of CO2 with single-site catalysts.  相似文献   

17.
Ever-increasing energy demands due to rapid industrialization and urban population growth have drastically reduced petroleum reserves and increased greenhouse-gas production, and the latter has consequently contributed to climate change and environmental damage. Therefore, it is highly desirable to produce fuels and chemicals from non-petroleum feedstocks and to reduce the atmospheric concentrations of greenhouse gases. One solution has involved using carbon dioxide (CO2), a main greenhouse gas, as a C1 feedstock for producing industrial fuels and chemicals. However, this requires high energy input from reductants or reactants with relatively high free energy (e.g., H2 gas) because CO2 is a highly oxidized, thermodynamically stable form of carbon. H2 can be generated through water photolysis, making it an ideal reductant for hydrogenating CO2 to CO. In situ generation of CO such as this has been developed for various carbonylation reactions that produce high value-added chemicals and avoid deriving CO from fossil fuels. This is beneficial because CO is toxic, and when extracted from fossil fuels it requires tedious separation and transportation. This combination of CO2 and H2 allows for functional molecules to be synthesized as entries into the chemical industry value chain and would generate a carbon footprint much lower than that of conventional petrochemical pathways. Based on this, CO2/H2 carbonylations using homogeneous transition metal-based catalysts have attracted increasing attention. Through this process, alkenes have been converted to alcohols, carboxylic acids, amines, and aldehydes. Heterogeneous catalysis has also provided an innovative approach for the carbonylation of alkenes with CO2/H2. Based on these alkene carbonylations, the scope of CO2/H2 carbonylations has been expanded to include aryl halides, methanol, and methanol derivatives, which give the corresponding aryl aldehyde, acetic acid, and ethanol products. These carbonylations revealed indirect CO2-HCOOH-CO pathways and direct CO2 insertion pathways. The use of this process is ever-increasing and has expanded the scope of CO2 utilization to produce novel, high value-added or bulk chemicals, and has promoted sustainable chemistry. This review summarizes the recent advances in transition-metal-catalyzed carbonylations with CO2/H2 and discusses the perspectives and challenges of further research.  相似文献   

18.
单原子催化剂(SAC)是由互相隔离分散的原子级活性位点锚定在基底上而形成的一类新兴催化剂材料, 其具有最大化的原子利用率、 可调控的独特电子结构, 因而在热催化、 光催化及电催化等方面展现出良好的应用前景. 通过SAC的热/光/电催化CO2转化反应(CCR)能将温室气体CO2转化为燃料或具有附加值的化学品, 为解决严重的全球变暖和能源短缺问题提供了一种有效策略. 本文总结了近年来SAC在CO2转化领域的研究进展, 讨论了其合成、 调控及催化各类CO2转化反应的优缺点, 并对其未来的发展进行了展望.  相似文献   

19.
近年来, 大气中CO2含量急剧增加, 导致了严重的温室效应. 将CO2作为C1资源转化为燃料或精细化学品引起了越来越多的关注. 开发高效、 稳定、 可回收利用的催化剂成为CO2资源化利用的关键. 在众多的CO2加氢催化剂中, 功能性多孔骨架材料固定型分子催化剂展示出优异的性能, 成为研究的热点之一. 功能性骨架材料, 如多孔有机聚合物(POPs)、 共价有机骨架(COFs)和金属有机骨架(MOFs), 具有比表面积大、 热稳定性高和可调性等特点, 在设计合成催化剂方面发挥着重要作用. 本文介绍了POPs/COFs/MOFs多孔骨架材料固定分子催化剂的开发及在催化CO2合成甲酸领域的最新进展.  相似文献   

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