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1.
喻志超  汤淳  姚丽  高庆  徐祖顺  杨婷婷 《化学进展》2018,30(12):1899-1907
中空介孔材料,尤其是硅基和碳基中空介孔材料,由于其孔道结构丰富、孔径可调、高比表面积、可容纳客体分子、良好的热稳定性和化学稳定性等特点已被广泛应用于催化、能量储存等众多领域。模板法是目前为止制备中空介孔结构最有效的方法之一,其最大特点是可以通过对模板的调控来实现对中空介孔结构的控制。聚合物基模板种类繁多,主要包括嵌段共聚物、聚合物乳胶粒、天然/合成生物大分子及复杂结构高分子等;与传统的表面活性剂/无机氧化物模板相比,其自组装形态更加丰富,结构更易进行功能化修饰。同时,以聚合物为模板的合成反应条件更加温和可控,更有利于合成形态各异、功能丰富的中空介孔材料。本文综述了近年来不同聚合物基模板合成中空介孔材料的研究进展,并着重介绍了贵金属粒子负载的中空介孔材料在催化载体领域的应用;同时,指出了当前阻碍中空介孔材料发展的问题,并对其在催化领域的应用前景进行了展望。  相似文献   

2.
方林  张坤  李晓红  吴海虹  吴鹏 《催化学报》2012,(1):2125-2133
利用化学浸渍法将蔗糖负载到 SBA-15 介孔材料孔道内部, 高温炭化形成的多聚苯环经发烟硫酸气相磺化处理后, 得到磺酸基团功能化的新型碳-硅介孔复合材料. 发烟硫酸气相磺化处理是该材料合成的关键步骤. X 射线衍射、扫描电镜和氮气吸附结果表明, 碳-硅介孔复合材料经磺酸化处理保持了高度有序的介孔结构. 热重、傅里叶变换的红外光谱及吡啶吸附红外光谱结果证明, 磺酸功能基团成功的嫁接于碳-硅介孔复合材料孔道的内表面, 反应活性中心为 Br?nsted 酸, 酸密度在 0.09~0.70 mmol/g 可以有效调变. 当碳负载量为 35% 时, 该复合材料在生物柴油的绿色合成中显示出最优的催化性能, 且可重复使用 3 次以上.  相似文献   

3.
中空介孔结构因具有丰富的内部空间以及多孔渗透性外壳等优势,在催化、能源储存与转化及生物医药等领域得到了广泛应用.然而,目前仍然缺少高效、简便且绿色的合成中空介孔结构的方法.本文以柠檬酸钠胶体颗粒作为模板,通过十六烷基三甲基溴化氨(Cetyltrimethylammonium bromide, CTAB)胶束与正硅酸四乙酯(Tetraethyl orthosilicate, TEOS)的水解低聚物在胶体颗粒表面进行界面共组装,直接生长介孔二氧化硅壳层;然后通过简便的醇洗和水洗分别除去CTAB胶束和柠檬酸钠胶体颗粒后,得到中空介孔结构.进一步研究表明,负电荷的柠檬酸钠胶体颗粒与CTAB胶束之间的静电相互作用是诱导氧化硅低聚物在颗粒表面进行交联组装的关键.基于此,通过控制生长时间实现了对中空介孔结构形貌和壳层厚度的精确调控.所得中空介孔二氧化硅纳米球可以显著增强物质的扩散传输,是理想的催化剂载体,负载金纳米颗粒后可以高效催化4-硝基苯酚的还原反应.研究结果为中空介孔材料的绿色简便合成提供了思路.  相似文献   

4.
以P123嵌段模板法合成SiO2-有序介孔(SiO2-OMPs)短棒状结构,以此为前驱体通过镁热还原和酚醛树脂碳包覆处理,成功制备出有序介孔硅/碳复合结构(Si/C-OMPs),用于锂离子电池负极材料测试。从扫描电镜图(SEM)和透射电图(TEM)观察发现,SiO2-OMPs形态可以通过HCl溶液浓度有效调控,在高浓度下获得高堆积密度的粒状有序介孔结构,并在镁热还原和碳包覆处理后这种有序介孔结构均得到完美保持。X射线衍射(XRD)数据的分析表明,镁热还原反应包括两步串连反应:Mg和SiO2先反应形成Mg2Si中间相,而后该相再还原剩余SiO2并获得终产物Si。第二步反应属于缓慢的固/固扩散过程,抑制了整个还原反应的完成,导致Si产率低且存在杂质相。电化学测试表明,由于其坚固的结构和畅通的介孔系统,有序介孔Si/C复合结构具有优异的循环稳定性和倍率性能。  相似文献   

5.
郭卓  郭彤  赵常礼  高云鹏  李莎 《无机化学学报》2010,26(11):1927-1933
制备了一个新的电极-聚苯胺掺杂介孔碳修饰电极(PANI-MC),并且研究了电极的电化学性质。在介孔分子筛SBA-15的孔道中沉积蔗糖,然后在氮气的保护下,1200℃热裂解,生成孔道规则排列的介孔碳(MC);XRD、N2吸附-脱附、TEM等方法表征了介孔碳的结构,用SEM表征了PANI-MC修饰电极的形貌。结果表明:复合电极膜与修饰前的聚苯胺膜形貌不同,与介孔碳形貌相似,介孔碳纳米微粒的大小清洗可辨,长度大约为20~40μm。复合电极循环伏安结果显示:峰电位向负电位方向移动,这可能是因为介孔碳的孔道结构阻碍了离子的转移。同时,还研究了复合电极对Cu2+的相应,表明:电极对低浓度的Cu2+有很好的线性相应,可以作为Cu2+的感应器。  相似文献   

6.
以碳纳米管、介孔碳分子筛和氮掺杂的介孔碳为前驱体,采用全氟磺酸-全氟乙烯共聚物(PTFE)液相沉积方法制备了修饰量相同的三种全氟磺酸功能化碳基固体酸催化剂,利用N2吸附、热重分析(TG)、透射电子显微镜(TEM)、傅里叶红外变换(FTIR)光谱以及电位滴定等方法对材料的结构和酸性进行了表征.考察催化剂对于苯甲醇与苯甲醚Friedel-Crafts (F-C)反应的催化性能.结果表明,前驱体的比表面积越大,与修饰剂的相互作用越强,越有利于修饰剂在前驱体表面的分散,得到的催化剂表面酸量越多,酸催化活性越好.因此,全氟磺酸功能化的氮掺杂介孔碳在F-C反应中表现出最高的活性和稳定性.  相似文献   

7.
采用自下而上方法制备了金-介孔二氧化硅复合纳米管,其中金纳米粒子作为催化剂嵌在介孔二氧化硅纳米管管壁内侧.金纳米颗粒的团聚、脱落和晶粒尺寸生长都可以被有效限制,而且催化剂负载量和尺寸大小均可实现简单控制.管壁中的介孔孔道、纳米管末端开口以及一维中空管道可以协同促进反应物扩散,从而提高4-硝基苯酚还原反应活性.循环实验证明这种复合纳米管催化剂具有良好的可重复使用性,而且在反应过程中未出现金纳米粒子脱落或团聚现象.  相似文献   

8.
 以正硅酸甲酯和硝酸铝为硅和铝的前驱体,以非离子表面活性剂C16EO10为结构导向剂,采用溶胶-凝胶法制备了双孔结构硅铝复合氧化物材料. 扫描电镜和N2吸附/脱附分析表明,材料具有三维连续大孔和骨架介孔的双孔分布结构. 微米范围的连续大孔结构是由于溶胶-凝胶过程中诱发了Spinodal相分离所致,而骨架介孔的形成则可能是由于表面活性剂分子进入凝胶骨架中,起到构建介孔结构的模板作用. 骨架元素分析结果表明,制备过程中添加的铝大部分进入了凝胶骨架中,取代部分硅而形成酸性硅铝复合氧化物. 采用Hammett指示剂法和吡啶吸附红外光谱法分析了材料的表面固体酸性,结果显示,硅铝复合氧化物属于中强酸,酸强度H0在-5.6~-3.0 之间的酸中心数约为0.35 mmol/g, 并且材料表面的L酸位较为丰富, B酸位相对较少.  相似文献   

9.
以间苯二酚和糠醛聚合而成的可溶性树脂为碳源,SnCl2为锡源,表面活性剂F127为模板剂,通过乳液分散法将锡源原位复合嵌入于介孔碳材料中,制备了纳米锡基材料高度分散于介孔碳中的复合材料。利用X射线衍射(XRD)、扫描电子显微镜(SEM)、透射电子显微镜(TEM)、N2吸脱附(BET)、循环伏安(CV)等对材料的微观结构和电化学性能进行了表征。结果显示锡基材料在介孔碳中较为密集,分布均匀,粒径小于5 nm。介孔碳丰富的孔道结构有效限制和缓解了锡基材料的生长、团聚和体积膨胀,同时高比表面积增加了电解液与锡基活性材料的接触,提供了更多的反应活性点,从而获得了更高的电化学活性。充放电测试结果显示,700℃热处理后,锡/介孔碳纳米复合材料经过50次循环后实际放电比容量达203.4 mAh.g-1,表现出良好的电化学性能。  相似文献   

10.
石墨相氮化碳是一种新兴的二维蜂窝状纳米材料,其结构中C原子和N原子以sp2方式杂化,通过PZ轨道上的孤对电子相互作用形成类似于苯环的π键,构成高度离域的共轭体系。这一独特结构使其可与一些离子或分子产生疏水、π-π键、氢键和静电力等相互作用,进而成为一种颇具潜力的吸附剂。但同时石墨相氮化碳本身紧密堆叠的层状结构导致其比表面积较小(< 10 m2/g)。介孔氮化碳应运而生,其具有孔尺寸为2~50 nm的典型介孔结构,与石墨相氮化碳相比,比表面积和孔体积获得有效提高且吸附位点更加丰富。该文总结了介孔氮化碳的合成方法及其在环境卫生领域的应用,并展望了其发展方向。  相似文献   

11.
A series of MOFs with a 6-connected spn topology were synthesized (MOF-808-(Zr, Hf), PCN-777-(Zr, Hf), MOF-818-(Zr, Hf)). Through the in situ DRIFTS of NH3 adsorption-desorption, we found that the activated catalyst mainly contains Lewis acid sites. The effects of different organic ligands on the Lewis acid of the Zr6 cluster were analyzed by XPS and NH3-TPD, and the relative Lewis acidity of the same metal was obtained: PCN-777>MOF-808>MOF-818. In the Py-FTIR results, we confirmed that MOF-818 has a higher acid site density. In the activity test, MOFs with mesoporous structure showed better catalytic activity under normal temperature and pressure. Among them, MOF-818 can still maintain a high degree of crystallinity after catalysis. Finally, we use density functional theory to propose the mechanism of the cycloaddition reaction of carbon dioxide and styrene oxide. The results show that the metal is coordinated with styrene oxide and halogens attack the β carbon of the epoxide.  相似文献   

12.
Although a lithium metal anode has a high energy density compared with a carbon insertion anode, the poor rechargeability prevents the practical use of anode materials. A lithium electrode coated with Li2CO3 was prepared as a negative electrode to enhance cycleability through the control of the solid electrolyte interface (SEI) layer formation in Li secondary batteries. The electrochemical characteristics of the SEI layer were examined using chronopotentiometry (CP) and impedance spectroscopy. The Li2CO3-SEI layer prevents electrolyte decomposition reaction and has low interface resistance. In addition, the lithium ion diffusion in the SEI layer of the uncoated and the Li2CO3-coated electrode was evaluated using chronoamperometry (CA).  相似文献   

13.
Undoped a‐C thin films were deposited with varying power density from 10 to 25 W/cm2 using unbalanced closed‐field magnetron sputtering (CFUBMS). The effect of power density on the physical and electrochemical properties was investigated by experimental characterization methods and atomistic simulations. XPS indicated that the films were composed mostly of sp2‐bonded carbon (55–58 at.%) with a small amount of oxygen (8–9 at.%) in the surface region. The films appeared completely amorphous in XRD. The ID/IG ratio obtained by Raman spectroscopy indicated an increase from 1.76 to 2.34 with power density. The experimental and simulated data suggested a possible ordering and/or clustering of the sp2 phase with power density as the cause of the improved electrical properties of the a‐C films. The electrochemical properties of a‐C were between those of glassy carbon and tetrahedral amorphous carbon with potential windows ranging from 2.77 to 2.93 V and double‐layer capacitance values around 0.90 μF cm?2. Electron transfer for Ru(NH3)63+/2+ and FcMeOH+1/0 was reversible whereas that for IrCl62?/3? was quasi‐reversible. Peak potential separation of dopamine and oxidation potential of ascorbic acid decreased with power density, correlating with the structural and electrical changes of the films. The a‐C thin films deposited by CFUBMS are inherently conductive and their physical properties can be adjusted by varying the deposition parameters to a wide range of electrochemical applications.  相似文献   

14.
The development of environmentally friendly solid acid catalysts is a priority task. Highly oxidized activated carbon and their ion-substituted (saline) forms are effective proton transfer catalysts in esterification, hydrolysis, and dehydration, and thus are promising candidates as solid acid cata-lysts. Computations by the ab initio method indicated the cause for the enchanced acidity of the carboxylic groups attached to the surface of highly oxidized carbon. The synthesis of phosphorilated carbon was considered, and the proton transfer reactions catalyzed by them in recent studies were analyzed. The development of an amorphous carbon acid catalyst comprising polycyclic carbonaceous (graphene) sheets with –SO3H, –COOH and phenolic type OH-groups was carried out. These new catalysts were synthesized by partial pyrolysis and subsequent sulfonation of carbohydrates, polymers, and other organic compounds. Their high catalytic activities in proton transfere reactions including the processing of bio-based raw materials was demonsrated.  相似文献   

15.
Sulfonated carbon as a strong and stable solid acid catalyst exhibited excellent catalytic performance in various acid-catalyzed reactions. Here, sulfonated carbon, as catalyst for oxidation reaction, was prepared via the carbonization of starch followed by sulfonation with concentrated sulfuric acid. N2 physisorption, X-ray diffraction, Fourier transform infrared spectroscopy, X-ray fluorescence and acid-base titration were used to characterize the obtained materials. The catalytic activity of sulfonated carbon was studied in the oxidation of aldehydes to carboxylic acids using 30 wt% H2O2 as oxidant. This oxidation protocol works well for various aldehydes including aromatic and aliphatic aldehydes. The sulfonated carbon can be recycled for three times without obvious loss of activity.  相似文献   

16.
Electrochemical reduction reaction of carbon monoxide (CORR) offers a promising way to manufacture acetic acid directly from gaseous CO and water at mild condition. Herein, we discovered that the graphitic carbon nitride (g-C3N4) supported Cu nanoparticles (Cu−CN) with the appropriate size showed a high acetate faradaic efficiency of 62.8 % with a partial current density of 188 mA cm−2 in CORR. In situ experimental and density functional theory calculation studies revealed that the Cu/C3N4 interface and metallic Cu surface synergistically promoted CORR into acetic acid. The generation of pivotal intermediate −*CHO is advantage around the Cu/C3N4 interface and migrated *CHO facilitates acetic acid generation on metallic Cu surface with promoted *CHO coverage. Moreover, continuous production of acetic acid aqueous solution was achieved in a porous solid electrolyte reactor, indicating the great potential of Cu−CN catalyst in the industrial application.  相似文献   

17.
Abstract

On the basis of Nucleosil-100 a series of materials with varying structure and different coverage density of chemically bonded C18 phases (CBP) were prepared. The physico-chemical characteristics of these packings e.g. porosity and carbon content were studied by the BET method and CHN analysis. The structure of the C18 CBP was determined by solid state CP/MAS NMR. The prepared packings and columns have been applied for HPLC separation of naproxen and its two diastereoisomeric conjugates with glucuronic acid. Material with monomeric C18 CBP structure and with high coverage density has given good and reproducible separation results.  相似文献   

18.
花生壳碳基固体酸催化环己烯与甲酸酯化反应(英文)   总被引:1,自引:0,他引:1  
碳基固体酸是一种可替代液体质子酸的无定形碳材料,具有酸密度大、催化活性高等优点.花生壳是农业废弃物,以其为原料制备碳基固体酸具有成本低、原料可再生和环境友好等优点.甲酸环己酯是重要的化工产品,可用于香料和涂料工业.传统的甲酸环己酯制备方法是以环己醇和甲酸为原料,在酸催化条件下进行酯化反应而得.近年来,随着环己烯的大规模生产,利用环己烯与甲酸直接酯化制备甲酸环己酯引起广泛关注.此外,甲酸环己酯还可通过水解反应转变为环己醇.环己醇可以进一步转化为己二酸和己内酰胺,从而用于化纤工业中尼龙-6和尼龙-66的生产.目前,工业上采用环己烯水合反应制备环己醇,由于热力学限制,并受到环己烯与水相容性差的影响,环己烯单程转化率仅为~10%,循环量较大,能耗很高.以环己烯为原料,通过甲酸环己酯制备环己醇克服了上述环己烯直接水合的缺点,具有很好的发展前景.我们研究组使用HZSM-5分子筛作为催化剂,采用"一锅法"由环己烯经甲酸环己酯制备环己醇,环己醇收率可达40%.但是环己烯在酸性条件下可发生低聚反应,生成的副产物会堵塞HZSM-5孔道,造成催化剂失活.本文在前述研究基础上,以花生壳为原料,经过碳化、磺化过程制备得到了碳基固体酸PSCSA.采用傅里叶变换红外光谱(FT-IR)、扫描电子显微镜(SEM)、X射线衍射(XRD)、拉曼光谱(Raman)、热重分析(TG)、X射线光电子能谱(XPS)和元素分析等方法表征了PSCSA的结构、微观形貌、热稳定性以及酸性质,考察了其催化环己烯与甲酸酯化反应性能,并与几种常见的固体酸催化剂进行了比较.FT-IR结果显示,经磺化后,PSCSA表面出现了–SO3H和–COOH基团.XPS结果则说明PSCSA表面所有的S元素均属于–SO3H,可利用元素分析测定S含量,进而得到–SO3H密度.此外,由于花生壳属于天然物质,成分并不均一,因此PSCSA的SEM照片中不同部位颗粒的微观形貌差异较大.采用PSCSA作为催化剂,考察了其催化环己烯与甲酸酯化反应性能,优化了反应条件.在酸/烯摩尔比为3/1,PSCSA用量0.07 g/mL环己烯,413 K反应1 h,环己烯转化率为88.4%,甲酸环己酯选择性为97.3%;副产物包括环己醇、二聚环己烯和环己基醚等.比较了PSCSA与几种常用固体酸如HZSM-5、离子交换树脂Amberlyst-15和Nafion NR50的催化性能,其中,Amberlyst-15催化性能最优,在393 K下反应,环己烯转化率亦达91.5%,甲酸环己酯选择性98.1%;但是,高昂的价格限制了其在工业上的大规模应用.与HZSM-5相比,PSCSA催化的环己烯与甲酸酯化反应的初始速率较低,反应时间超过30 min后,环己烯转化率迅速增加.在本反应中,PSCSA在甲酸存在条件下发生溶胀,使得大量的甲酸分子插入到碳材料本体中;而环己烯与甲酸具有较好的相容性,因此环己烯可以进入到碳材料本体中,与活性中心–SO3H充分接触,从而具有较高的反应速率.并且,由于溶胀需要一定的时间,在反应初期溶胀不充分时,环己烯、甲酸与活性中心接触有限,因此反应较慢;反应一定时间后,PSCSA充分溶胀,更多的–SO3H参与到反应中,反应速率加快.PSCSA重复使用性较好,第3次使用时环己烯转化率为68.6%;继续使用,催化剂不再失活.PSCSA在反应初期失活是–SO3H流失造成的.构成PSCSA的多环芳香烃可以部分溶解到溶剂中,进而带走其包含的–SO_3H.PSCSA的后期活性稳定则说明可以流失的活性中心是有限的.  相似文献   

19.
Carbon based composite materials have gained much attention because of fulfilling desirable properties for supercapacitor application. In the featured work, the thin film of Bi2S3:PbS solid solution has been synthesized on multi‐walled carbon nanotubes (MWCNTs) by simple successive ionic layer adsorption and reaction (SILAR) method. The nanoparticle morphology provides sufficient electroactive channels for electrolyte ions to penetrate during electrochemical activities. The composite exhibits superior specific capacitance 676 F/g at constant specific current density of 5.56 A/g with fast charge‐discharge cycles. In association of energy storage characteristics, the fabricated symmetric cell exhibits excellent energy density of 13.36 Wh/kg by acquiring power density of 0.83 kW/kg. The superior results of the hybrid electrode promise a novel direction for high performance supercapacitor application.  相似文献   

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