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1.
张军旗  杨永进  张劲松  刘强 《化学学报》2002,60(11):1973-1980
采用脉冲微波强化丝光等离子体反应装置,研究了甲烷氧化偶联与二氧化碳重 整制合成气(CO+H_2)副产乙炔、乙烯的反应。常压下,当CH_4和CO_2流量分别为 120,80mL/min,微波峰值功率120W,脉冲通断比为100/100ms时,CH_4和CO_2转化 率分别为70.8%,68.8%;CO, C_2H_2,C_2H_4选择性分别为75%,17.8%和4.1%,产物 中没有积炭。H_2/CO摩尔比值随原料气中甲烷比例的增加而增大,当CH_4/CO_2摩 尔比为2:1时,H_2/CO摩尔比达到2,这种比例的合成气能方便地用于下一步的 Fischer-Tropsch反应和其他化学品的合成。与其他等离子体反应相比,采用脉冲 强化常规丝光等离子体进行CH_4脱氢偶联与CO_2重整反应,能量效率明显提高,这 对于促进微波等离子体技术在C1化学中的应用具有重要的意义。  相似文献   

2.
甲烷催化转化为高附加值产物、实现甲烷高效利用,具有重要的研究意义及工业应用价值。长期以来,如何在较温和的条件下将甲烷转化为其它更有价值的有机衍生物,如醇、芳烃、长链烷烃和烯烃等,是催化、化学及化工领域的热点和难点课题之一。光催化反应由光能激发产生光生电子和空穴,参与到甲烷C―H键活化和自由基形成,这为低温甲烷转化提供新的途径,本文主要围绕甲烷氧化和偶联反应,总结了近年来光催化研究进展,并对如何进一步提高光催化性能提出展望。  相似文献   

3.
徐冰君 《物理化学学报》2023,39(1):2012030-0
<正>甲烷作为常规天然气、页岩气、可燃冰等的主要组成成分,是非常重要的碳基资源。由于甲烷分子中C―H键的高键能及弱极性,其活化通常需要在较苛刻的反应条件下进行,这使得如何实现甲烷的化学定向转化极具挑战性,甚至被誉为催化化学领域的“圣杯”。在已报道的甲烷转化研究中,甲烷部分氧化制备C1化学品/化工平台分子(如甲醇、甲醛、CO等)一直广受关注1–3。  相似文献   

4.
普通烷烃C―H键是指不受杂原子和碳不饱和官能团影响的sp3C―H键,如甲烷、链烷烃和环烷烃的C―H键等。它们具有较大的键能和较小的酸碱性,因而呈现惰性,通常不易在温和条件下发生断裂。同时,除个别烷烃以外,普通烷烃往往具有不同性质和不同位置的C―H键,其反应选择性也是一个难点。近半个世纪以来,金属参与的惰性C―H键活化及官能化反应得到了重视与发展。其中,在没有官能团导向作用下,过渡金属催化剂对甲烷C―H键和普通烷烃一级C―H键进行选择性亲电活化和氧化加成,从而导致官能化反应发生是比较有效的。本文介绍了这些方法的研究进展,包含机理分析以及相关反应的建立。  相似文献   

5.
大量废弃塑料引发了一系列的环境和生态问题,其转化和利用一直受到广泛关注.塑料中含有丰富的碳元素,但这些碳元素往往以惰性的C–C键和C–H键形式存在,因此如何利用这些碳资源成为一大难题和挑战.以往部分研究已经提供了塑料催化转化制备碳材料、化学品和燃料的可能性,但是自然界中的废弃塑料总量庞大,需要考虑其转化过程中的能量来源.地球上有丰富的太阳能资源,光催化过程有可能利用太阳能来实现温和条件下的废弃塑料转化.在以往的研究中,光催化塑料降解和光催化塑料重整过程主要关注的目标产物分别是CO2和H2.相较而言,光催化塑料转化制备低碳数有机化合物的过程有望助力碳循环经济的发展.近年来报道了一些光催化塑料转化制备低碳数有机化合物的研究工作,这些研究为获取和利用塑料中的碳资源提供了新的研究思路和策略.本文概括对比了光催化塑料降解、光催化塑料重整和光催化塑料转化制备低碳数有机化合物三种过程的差异,包括其中的目标产物和相应的反应活性物种.此外,本文总结了光催化塑料转化制备低碳数化合物的反应方法.简要地说,塑料可以经过光催化选择性氧化、氧化偶联和水解脱氢等策略来得到低碳数的化学品和燃料,涉及利用光催化氧化过程断裂塑料中的C–C键,利用水解过程断裂塑料的C–N和C–O键,以及利用光催化脱氢过程断裂中间产物的O–H键和N–H键等关键步骤.在光催化塑料转化到低碳数有机产物的文献报道中,主要涉及液固相反应体系和反应器,需要考虑反应溶剂的选择.水是理想的溶剂,但对塑料的溶解能力有限.当使用其他有机溶剂时,需要利用同位素标记实验验证产物中的碳物种来源.此外,实际废弃塑料上残留的其他杂质会影响光催化剂的吸光过程,降低光催化反应效率,因此亟需设计和开发合理的光反应器来提高对光能的利用率,实现塑料的高效转化.虽然塑料制备低碳数化学品和燃料的光催化转化策略已有研究报道,但未来仍需探索更加高效的转化路线.此外,塑料主要呈现高分子聚合物的结构,未来的研究可以借鉴对生物质等天然聚合物分子的转化策略.  相似文献   

6.
近年来,过渡金属催化不活泼C(sp3)—H键氧化反应取得重要进展.该领域的研究主要集中在过渡金属催化甲烷选择性氧化,以及过渡金属催化导向基团螯合甲基氧化方面,这些研究成果实现了许多传统氧化方法不能完成的高效选择性转化.重点概述导向基团(肟、噁唑啉、吡啶、酰胺、羧酸、羟基)对促进过渡金属催化氧化C(sp3)—H键的影响,底物的乙酰氧基化、羟基化、羰基化、酯化反应以及催化反应体系和相关机制.  相似文献   

7.
甲烷氧化偶联La—Mn—Li系复合氧化物催化剂的研究   总被引:1,自引:0,他引:1  
用XRD、IR、XPS和SEM等方法研究了混合氧化物LiLa_(1-x)Mn_xO_2的结构和它们对甲烷氧化偶联的催化性能。结果表明,随着MnO_2的变化,可形成一系列复合氧化物,其中三元复合氧化物La_2Mn_(1-y)Li_yO_4是甲烷氧化偶联的活性相,由于Li~+部分取代Mn~(2+)形成Li~+-O~--Mn(2+)缺陷簇,增加了活性氧种的浓度和再生速度是这种氧化物具有较高甲烷偶联活性的主要原因。脉冲实验证明,CH_4脱氢生成CH_3·偶联生成C_2H_6,进一步氧化脱氢生成C_2H_4都可在催化剂表面完成,而CO和CO_2是在气相反应中生成的。在780℃C_2收率可达23.9%。  相似文献   

8.
甲烷部分氧化制合成气Ni/MgO和Ni-MgO/MgO催化剂的研究   总被引:1,自引:0,他引:1  
李基涛  严前古 《分子催化》2000,14(3):232-234
甲烷氧化偶联制乙烷、乙烯以及甲烷选择氧化制甲醇、甲醛等反应 ,因其转化率和收率低 ,故短期内无法实现工业化 .目前 ,工业上应用甲烷蒸汽转化制合成气 ,进而合成氨等化工产品 .甲烷蒸汽转化制的合成气 ,其 H2 /CO≥ 3,不适用于甲醇合成和 F- T合成 .而甲烷部分氧化制的合成气 ,其H2 /CO≤ 2 ,因而最适合用于甲醇合成和 F- T合成 ,故近 1 0年来倍受科学家的关注[1 ,2 ] .在 CH4部分氧化制合成气中 ,钌、铑、钯、铂等贵金属催化剂的活性高、选择性好、稳定性好[1 ] ,但价格昂贵 (负载量以 1 2 %~ 4 0 %为佳 ) ,因而难以实现商品化 .N…  相似文献   

9.
以低价元素掺杂SrTiO_3形成的SrTi_(1-x)MxO_(3-δ)(M=Al~(3+),Mg~(2+),Li~+;x=0~0.2)基本保持了SrTiO_3晶格结构。随着掺杂元素价态的降低和掺杂量的增加,p型电导升高,甲烷氧化偶联反应的C_2选择性和C_2收率也增加。在以不同价态元素掺杂的SrTiO_3体系中,发现C_2选择性和C_2收率与催化剂P型电导间有线性关系。认为掺杂SrTiO_3催化剂中的正导电空穴易与晶格氧发生电子交换生成部分还原态的活泼氧物种O~-,它可以使CH_4分子活化生成CH_3,进一步偶联生成C_2产物。掺杂SrTiO_3催化剂在甲烷氧化偶联反应初始阶段可吸收反应中产生的CO_2,使结构发生少许变化,稳定的SrTiO_3结构有利于甲烷氧化偶联活性的稳定。  相似文献   

10.
甲烷在W-Mn体系催化剂上氧化偶联制乙烯   总被引:24,自引:8,他引:24  
本文报导了w-Mn体系催化剂的甲烷氧化偶联反应性能,详细考察了反应条件对1.9wt%Mn—5wt%Na_2WO_4/SiO_2(W—34)催化剂反应性能的影响,并用XRD、BET、EPR、UV-DRS等方法对该催化剂进行了表征。结果表明,该催化剂具有较好的甲烷氧化偶联反应性能,在T=800C,甲烷空速=36,000ml·g~(-1)·h~(-1),CH_4:O_2:N_2=3:1:2.6的最佳实验条件下,其甲烷转化率为36.8%,C_2烃收率达到23.9%;研究还表明,C_2H_6,CO_2是CH_1氧化的一次产物,C_2H_4主要由C_2H_6脱氢而来,而CO则可能主要来源于C_2烃的表面深度氧化,催化剂的结构研究表明,在该催化剂中,w是以Na_2WO_4形式存在,Mn则以Mn_2O_3形式存在,而SiO_2已由无定型结构转变成u-方石英;W、Mn、Si之间没有形成新的化合物。  相似文献   

11.
如何在较温和的条件下将甲烷转化为其它更有价值的有机衍生物,如醇、芳烃、长链烷烃和烯烃等,长期以来是催化、化学及化工领域的热点课题和难点课题之一。为了提高甲烷的转化效率,过去几十年里,研究人员不断开发新的催化剂和新的反应路径。与传统高温热催化方法相比,如果能利用自然界中丰富的太阳能驱动甲烷转化,将同时满足能源和环保两方面的要求,是各种新型非常规策略中比较令人期待的一种。本文从光催化材料的组成、结构及催化路线、催化机制等方面进行总结,对当前室温光活化甲烷分子的研究现状加以论述。  相似文献   

12.
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   

13.
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   

14.
随着工业化的推进,化石能源的消耗产生大量温室气体,其中CH4和CO2占据温室气体排放的98%以上。将CH4和CO2转化为高附加值化学品具有重要的意义,一直受到工业界和学术界广泛关注。传统的热催化甲烷干重整(DRM)可实现将CH4和CO2转化为合成气,但该反应过程受热力学限制,需要很高的能量输入,并且由于反应温度较高,催化剂易发生积碳而失活。绿色环保的光催化技术可以使甲烷干重整反应在温和条件下进行,但是存在太阳光利用率和反应转化率较低等问题。最近光热协同催化受到学术界广泛关注。许多研究结果表明,在相对温和的条件下,光热催化DRM可以获得良好的催化效果,可有效实现太阳能转化为化学能。本文简要介绍近期光热催化甲烷干重整反应的研究进展,总结不同金属催化剂在光热催化甲烷干重整中的应用,同时提出了光热催化甲烷干重整存在的一些挑战及展望。  相似文献   

15.
Industrialization undoubtedly boosts economic development and improves the standard of living; however, it also leads to some serious problems, including the energy crisis, environmental pollution, and global warming. These problems are associated with or caused by the high carbon dioxide (CO2) and sulfur dioxide (SO2) emissions from the burning of fossil fuels such as coal, oil, and gas. Photocatalysis is considered one of the most promising technologies for eliminating these problems because of the possibility of converting CO2 into hydrocarbon fuels and other valuable chemicals using solar energy, hydrogen (H2) production from water (H2O) electrolysis, and degradation of pollutants. Among the various photocatalysts, silicon carbide (SiC) has great potential in the fields of photocatalysis, photoelectrocatalysis, and electrocatalysis because of its good electrical properties and photoelectrochemistry. This review is divided into six sections: introduction, fundamentals of nanostructured SiC, synthesis methods for obtaining nanostructured SiC photocatalysts, strategies for improving the activity of nanostructured SiC photocatalysts, applications of nanostructured SiC photocatalysts, and conclusions and prospects. The fundamentals of nanostructured SiC include its physicochemical characteristics. It possesses a range of unique physical properties, such as extreme hardness, high mechanical stability at high temperatures, a low thermal expansion coefficient, wide bandgap, and superior thermal conductivity. It also possesses exceptional chemical characteristics, such as high oxidation and corrosion resistance. The synthesis methods for obtaining nanostructured SiC have been systematically summarized as follows: Template growth, sol-gel, organic precursor pyrolysis, solvothermal synthesis, arc discharge, carbon thermal reduction, and electrospinning. These synthesis methods require high temperatures, and the reaction mechanism involves SiC formation via the reaction between carbon and silicon oxide. In the section of the review involving the strategies for improving the activity of nanostructured SiC photocatalysts, seven strategies are discussed, viz., element doping, construction of Z-scheme (or S-scheme) systems, supported co-catalysts, visible photosensitization, construction of semiconductor heterojunctions, supported carbon materials, and construction of nanostructures. All of these strategies, except element doping and visible photosensitization, concentrate on enhancing the separation of holes and electrons, while suppressing their recombination, thus improving the photocatalytic performance of the nanostructured SiC photocatalysts. Regarding the element doping and visible photosensitization strategies, element doping can narrow the bandgap of SiC, which generates more holes and electrons to improve photocatalytic activity. On the other hand, the principle of visible photosensitization is that photo-induced electrons move from photosensitizers to the conduction band of SiC to participate in the reaction, thus enhancing the photocatalytic performance. In the section on the applications of nanostructured SiC, photocatalytic H2 production, pollutant degradation, CO2 reduction, photoelectrocatalytic, and electrocatalytic applications will be discussed. The mechanism of a photocatalytic reaction requires the SiC photocatalyst to produce photo-induced electrons and holes during irradiation, which participate in the photocatalytic reaction. For example, photo-induced electrons can transform protons into H2, as well as CO2 into methane, methanol, or formic acid. Furthermore, photo-induced holes can convert organic waste into H2O and CO2. For photoelectrocatalytic and electrocatalytic applications, SiC is used as a catalyst under high temperatures and highly acidic or basic environments because of its remarkable physicochemical characteristics, including low thermal expansion, superior thermal conductivity, and high oxidation and corrosion resistance. The last section of the review will reveal the major obstacles impeding the industrial application of nanostructured SiC photocatalysts, such as insufficient visible absorption, slow reaction kinetics, and hard fabrication, as well as provide some ideas on how to overcome these obstacles.   相似文献   

16.
工业化无疑促进了经济的发展,提高了生活水平,但也导致了一些问题,包括能源危机、环境污染、全球变暖等, 其中这些所产生问题主要是由燃烧煤炭、石油和天然气等化石燃料引起的。光催化技术具有利用太阳能将二氧化碳转化为碳氢化合物燃料、从水中制氢、降解污染物等优点,从而在解决能源危机的同时避免环境污染,因此被认为是解决这些问题的最有潜力的技术之一。在各种光催化剂中,碳化硅(SiC)由于其优良的电学性能和光电化学性质,在光催化、光电催化、电催化等领域具有广阔的应用前景。本文首先系统地阐述了各种SiC的合成方法,具体包括模板生长法、溶胶凝胶法、有机前驱物热解法、溶剂热合成法、电弧放电法,碳热还原法和静电纺丝等方法。然后详细地总结了提升SiC光催化活性的各种改性策略,如元素掺杂、构建Z型(S型)体系、负载助催化剂、可见光敏化、构建半导体异质结、负载炭材料、构建纳米结构等。最后重点论述了半导体的光催化机理以及SiC复合物在光催化产氢、污染物降解和CO2还原等领域的应用研究进展,并提出了前景展望。  相似文献   

17.
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   

18.
The reactivity of atomic metal cations toward CH4 has been extensively investigated over the past decades. Closed-shell metal cations in electronically ground states are usually inert with CH4 under thermal collision conditions because of the extremely high stability of methane. With the elevation of collision energies, closed-shell atomic gold cations (Au+) have been reported to react with CH4 under single-collision conditions to produce AuCH2+, AuH+, and AuCH3+ species. Further investigations found that the ion-source-generated AuCH2+ cations can react with CH4 to synthesize C―C coupling products. These previous studies suggested that new products for the reaction of Au+ with CH4 can be identified under multiple-collision conditions with sufficient collision energies. However, the reported ion-molecule reactions involving methane were usually performed under single- or multiple-collision conditions with thermal collision energies. In this study, a new reactor composed of a drift tube and ion funnel is constructed and coupled with a homemade reflectron time-of-flight mass spectrometer. Laser-ablation-generated Au+ ions are injected into the reactor and drift 120 mm to react with methane seeded in the helium drift gas. The reaction products and unreacted Au+ ions are focused through the ion funnel and accumulate through a linear ion trap and are then detected by a mass spectrometer. In the reactor, the pressure is approximately 100 Pa, and the electric field between the drift tube and ion funnel can regulate the collision energies between ions and molecules. The reaction of the closed-shell atomic Au+ cation with CH4 is investigated, and the C―C coupling product AuC2H4+ is observed under multiple-collision conditions with elevated collision energies. Density functional theory calculations are performed to understand the mechanism of the coupling reaction (Au++ 2CH4 → AuC2H4+ + 2H2). Two pathways involving Au―CH2 and Au―CH3 species can separately mediate the C―C coupling process. The activation of the second C―H bond in each process requires additional energy to overcome the relatively high barrier (2.07 and 2.29 eV). Ion-trajectory simulations under multiple-collision conditions are then conducted to determine the collisional energy distribution in the reactor. These simulations confirmed that the electric fields between the drift tube and ion funnel could supply sufficient center-of-mass kinetic energies to facilitate the C―C coupling process to form AuC2H4+. The following catalytic cycle could then be postulated: $\mathrm{AuC}_{2} \mathrm{H}_{4}^{+}+\mathrm{CH}_{4} \stackrel{\Delta}{\longrightarrow} \mathrm{AuCH}_{4}^{+}+\mathrm{C}_{2} \mathrm{H}_{4}, \mathrm{AuCH}_{4}^{+}+\mathrm{CH}_{4} \stackrel{\Delta}{\longrightarrow} \mathrm{AuC}_{2} \mathrm{H}_{4}^{+}+2 \mathrm{H}_{2}$, and $\mathrm{CH}_{4} \stackrel{\mathrm{Au}^{+}, \Delta}{\longrightarrow} \mathrm{C}_{2} \mathrm{H}_{4}+2 \mathrm{H}_{2}$. Thus, this study enriches the chemistry of both gold and methane.  相似文献   

19.
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   

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