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1.
合成了一种具有较高比表面积(SBET=1804 m 2/g)的新型二维共价有机框架(COF)材料(JUC-516), 并将其应用于模拟人体体液(SBF)中模拟动物体内的药物缓释, 取得了较理想的效果. 通过Materials Studio模拟、 粉末X射线衍射(PXRD)、 N2吸附-脱附分析、 扫描电子显微镜(SEM)及傅里叶变换红外光谱(FTIR)等方法表征了所得COF材料的结构, 证实JUC-516是一种基于AA堆积hcb拓扑、 具有高结晶度和球状形貌的共价有机框架材料.  相似文献   

2.
以无机盐Zr(NO3)4与Mg(NO3)2为原料,聚氧乙烯-聚氧丙烯-聚氧乙烯嵌段型聚醚(P123)作模板剂,合成了纳米介孔MgO-ZrO2复合材料,并通过XRD、N2吸附-脱附、CO2-TPD、TG等方法对材料进行了表征。结果表明,合成的MgO-ZrO2具有介孔结构,比表面积较大;且材料在反复CO2吸附-脱附应用过程中,能够完全再生。此外,材料具有典型的固溶体结构,Mg2+进入四方相ZrO2晶格中并取代Zr4+,形成了一种特殊碱性位。这种碱性位与基体结合牢固,不易流失。考察了MgO-ZrO2材料在150℃高温下的CO2吸附性能,发现材料具有较高的吸附速率(0.084 mmol/(g.min))和吸附量(1.01 mmol/g),是一种可循环利用的吸附材料。  相似文献   

3.
通过在MCM-41材料中引入Al 3+和Ti 4+两种诱因金属离子合成了化学改性介孔材料Al-Ti-MCM-41和Ti-Al-MCM-41;评价了两种介孔材料对污水中镉离子的吸附行为.利用氮气吸附-脱附等温线对Al-Ti-MCM-41(1∶1)样品的吸附行为进行了详细分析,考察了吸附剂投加量、Cd2+初始质量浓度和吸附温度对其吸附行为的影响.结果表明:改性Al-Ti-MCM-41(1∶1)介孔材料的最可几孔径和比孔容分别为16nm和0.04cm3/g,由BJH法计算得到的平均孔径为17.02nm;其对污水中Cd2+的吸附率达99.8%.Cd2+的吸附率随Al-Ti-MCM-41(1∶1)介孔材料投加量的增加先增加而后降低最终达到平衡,吸附容量随Cd2+初始浓度的增大而增加;吸附温度对吸附行为基本无影响.  相似文献   

4.
采用十六烷基三甲基溴化铵(CTAB)作模板剂, SnCl4·5H2O为无机离子源在水溶液中合成了有序介孔氧化锡材料. 通过XRD、N2-吸附脱附、TEM测试手段对合成产物进行表征, 并且测试了该材料作为锂离子电池阳极的可逆容量和循环能力. 结果表明, 合成过程中氨水的加入量对制备有序结构材料至关重要, 适量的OH-离子能将Sn(ClxBry)2-单元诱导组装到表面活性剂液晶模板上; 介孔材料用于锂离子电池阳极时循环容量保持能力良好; 首次不可逆容量高于SnO2理论损失量, 原因是介孔材料将锂离子滞留在孔中.  相似文献   

5.
以三醛基间苯三酚(TFP)和溴化乙锭(EB)为单体, 在溶剂热条件下合成了一种二维β-酮烯胺类阳离子型共价有机框架(COF)材料. 所得TFP-EB COF呈现出良好的结晶度、 高的比表面积和丰富的溴化乙锭单元, 故可将其应用于水中非甾体抗炎药(NSAIDs)的去除.阳离子TFP-EB COF对双氯芬酸钠(DCF-S)和对氨基水杨酸钠(PAS-S)两种非甾体抗炎药表现出高的吸附能力和快的吸附动力学, 其饱和吸附容量分别可达350.4和145.3 mg/g. 而采用TFP与4,4'-二氨基联苯(BND)在类似条件下合成的中性TFP-BND COF则表现出较差的吸附性能, 其对DCF-S和PAS-S的饱和吸附容量分别仅有59.7和13.6 mg/g. TFP-EB COF的吸附性能比TFP-BND COF更优异, 这主要归因于TFP-EB COF孔道中存在的大量阳离子EB单元与NSAIDs中的羧基间存在强烈的静电作用. 此外, 竞争离子干扰和循环再生实验表明阳离子型TFP-EB COF在NSAIDs污染物的去除方面具有良好的应用前景.  相似文献   

6.
氨基功能化SBA-15的直接合成及其对CO_2的吸附性能研究   总被引:1,自引:0,他引:1  
通过直接法合成了氨基功能化SBA-15介孔材料。使用X-射线粉末衍射法(XRD),N2吸-脱附,透射电子显微(TEM)等技术对氨基功能化材料进行了表征。实验结果表明:当反应原料中nAPTES/(nAPTES+nTEOS)≤0.20时,APTES功能化的材料都具有典型的介孔SBA-15结构;但当nAPTES/(nAPTES+nTEOS)≥0.225时,由于氨基对SBA-15结构的副作用导致SBA-15介孔结构坍塌。在氟离子辅助合成下可以获得高含量氨基(反应原料中nAPTES/(nAPTES+nTEOS)的比值为0.25)功能化的SBA-15材料,且此材料中的介孔孔径和BET比表面积都较大。CO2吸附结果表明,随着反应原料中APTES含量提高,所合成的材料对CO2的吸附量相应增加,同时在101kPa和25℃下,通过氟离子辅助合成的材料对CO2的吸附量远远优于无氟离子辅助合成材料的。本研究还对后嫁接法和直接合成法获得氨基功能化SBA-15介孔材料的优缺点进行了讨论。  相似文献   

7.
可用于色谱固定相的介孔氧化硅球材料的合成   总被引:6,自引:0,他引:6  
雷杰  余承忠  范杰  闫妍  屠波  赵东元 《化学学报》2005,63(8):739-744
采用非离子型嵌段高分子表面活性剂EO20PO30EO20 (P65)为结构导向剂, 正硅酸乙酯为硅源, 在酸性介质中, 静置法制备了微米级介孔氧化硅球. 通过改变合成温度、反应时间或者无机盐KCl的加入量, 可以调节介孔氧化硅球的直径(9.0~17.6 μm); 加入1,3,5-三甲苯(TMB)或者调节水热温度, 可以调节介孔氧化硅球的孔径(2.3~4.8 nm). 采用X射线衍射(XRD)、N2吸附-脱附、扫描电镜(SEM)、激光散射粒度分布和对溶菌酶的吸附等方法, 对介孔氧化硅球的结构、孔性质、形貌、吸附性质等进行了表征. 实验发现, 孔径较小的介孔氧化硅球(≤4.3 nm)对溶菌酶的吸附不明显(≤42 mg/g), 而孔径(4.8 nm)大于溶菌酶直径的材料对溶菌酶有较大的吸附量(192 mg/g), 说明孔径均匀可调的介孔氧化硅球材料可以很好地用作体积排阻色谱柱的固定相.  相似文献   

8.
在极稀溶液中, 通过改变反应溶剂去离子水的量或原料中铝源的量, 可控合成了不同粒径(20~70 nm)、形貌和孔道结构的纳米介孔氧化硅颗粒和纳米介孔铝掺杂氧化硅材料. 这种材料具有高比表面积(BET比表面积1000 m2/g)和较大的孔容(1.1~1.8 cm3/g). 反应物浓度降低或反应物中添加铝源后, 介孔材料的有序性下降, 粒径减小, 孔容增大, 并产生大量的间隙孔. 通过小角X射线衍射(SAXRD)、透射电镜和氮气吸附-脱附实验表征了样品.  相似文献   

9.
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   

10.
采用3-[2-(2-氨基乙基氨基)乙基氨基]丙基-三甲氧基硅烷(AAAPTS)为单体,通过“一锅法”制备了一种氨基官能化介孔二氧化硅吸附材料用于吸附As(V)。通过傅立叶红外光谱(FT-IR)、扫描电镜(SEM)和氮气吸附-脱附分析对材料进行表征,并对吸附条件进行优化。结果表明,氨基官能化介孔二氧化硅在吸附环境为pH 3,温度25℃,吸附时间30 min时达到最佳吸附效果,其饱和吸附量为93.74 mg/g。动力学吸附、等温吸附实验结果表明,合成的材料符合伪二阶动力学模型且属于单层吸附的化学结合过程。本研究为去除环境水样品中的As(V)提供了潜在吸附材料。  相似文献   

11.
Radioactive iodine is a notorious pollutant in gas radioactive nuclear waste due to its radiation hazard, volatility, chemical toxicity, and high mobility. Therefore, developing a material with high efficiency-specific iodine capture is significant. Covalent organic framework(COF) has attracted significant attention as a new crystalline porous organic material. Due to its large specific surface and high chemical stability, it is an excellent alternative to adsorbents. Herein, we report a chemically stable two-dimensional COF(termed JUC-609) with specific adsorption of iodine. Adsorption experiments show that JUC-609 has an excellent iodine adsorption capacity as high as 5.9 g/g under 353 K and normal pressure condition, and iodine adsorption after multiple cycles is still maintained. Our study thus promotes the potential application of COFs in the field of environment-related applications.  相似文献   

12.
氧还原反应(ORR)是能进行能量存储的核心电化学过程。由于它的动力学速率缓慢,因此亟需制备出高活性的电催化剂来促进这一反应的速率。二维共价有机框架材料(2D COFs)的π-π堆积结构可赋予骨架高导电率,并且一维有序的孔道有利于促进中间反应体传输。因此,其在可再生能源领域中具有良好的应用前景,并有望作为能量存储与转化的强大催化平台。本文通过向2D COFs中引入金属卟啉单元及硫醚单元成功制备了两个2D COFs (JUC-600和JUC-601)。通过多种表征手段证明,这两个2D COFs均具有AA堆积的sql拓扑结构。通过电化学测试表明,Co2+配位的JUC-601具有更正的ORR起始电势(0.825 V)和半波电势(0.7 V)、更高的活性表面积(7.8 mF/cm2),更低的Tafel斜率(58 mV/dec)。这主要是由于JUC-601的高比表面积和高孔隙率使得中间产物能更易在COFs的表面和孔道中接触和传输。此外,Co2+-卟啉单元以及硫醚单元的存在使其骨架整体的电子结构发生了变化,更有利于电子转移。这一工作不仅开发了新的二维卟啉-硫醚基COFs材料,同时也拓展了2D COFs材料在电催化领域的应用。  相似文献   

13.
采用室温离子热法合成了一种氟取代的具有五重贯穿金刚石拓扑结构的三维共价有机骨架材料(COFs), 记为JUC-515. 与高温溶剂热法不同的是, 室温离子液体法具有反应温度和压力低、 反应时间短、 操作简单、 无需催化剂和不产生有机蒸汽污染等优势. 制备的材料具有高度结晶性、 较大的孔隙率和良好的CO2选择性吸附性能.  相似文献   

14.
《中国化学快报》2022,33(7):3556-3560
Based on the outstanding application advantages of nitrogen-rich materials with regular porous frameworks in the capture of gaseous radioactive iodine, a series of covalent organic frameworks (COFs) with dual channels and abundant tertiary-amine active sites were constructed herein via a unique multi-nitrogen node design. The high density of up-to-six nitrogen adsorption sites in a single structural unit of the products effectively improved the adsorption capacities of the materials for iodine. Moreover, the adsorption affinity of the active sites can be further regulated by charge-induced effect of different electron-donating groups introduced into the COFs. Adsorption experiments combined with DFT theoretical calculations confirmed that the introduction of electron-donating groups can effectively increase the electron density around the active sites and enhance the binding energy between the materials and iodine, and thus improve the iodine adsorption capacity to 5.54 g/g. The construction strategy of multi-nitrogen node and charge-induced effect proposed in this study provides an important guidance for the study of the structure-activity relationship of functional materials and the design and preparation of high-performance iodine adsorption materials.  相似文献   

15.
To safeguard the development of nuclear energy, practical techniques for capture and storage of radioiodine are of critical importance but remain a significant challenge. Here we report the synergistic effect of physical and chemical adsorption of iodine in tetrathiafulvalene-based covalent organic frameworks (COFs), which can markedly improve both iodine adsorption capacity and adsorption kinetics due to their strong interaction. These functionalized architectures are designed to have high specific surface areas (up to 2359 m2 g−1) for efficient physisorption of iodine, and abundant tetrathiafulvalene functional groups for strong chemisorption of iodine. We demonstrate that these frameworks achieve excellent iodine adsorption capacity (up to 8.19 g g−1), which is much higher than those of other materials reported so far, including silver-doped adsorbents, inorganic porous materials, metal–organic frameworks, porous organic frameworks, and other COFs. Furthermore, a combined theoretical and experimental study, including DFT calculations, electron paramagnetic resonance spectroscopy, X-ray photoelectron spectroscopy, and Raman spectroscopy, reveals the strong chemical interaction between iodine and the frameworks of the materials. Our study thus opens an avenue to construct functional COFs for a critical environment-related application.

The synergistic effect of physical and chemical adsorption of iodine in tetrathiafulvalene-based covalent organic frameworks (COFs) has been explored. The iodine adsorption capacity of these materials is higher than other materials reported so far.  相似文献   

16.
Exploring novel materials deriving from earth resources to substitute for platinum(Pt) electrocatalyst to promote oxygen reduction reaction(ORR) of fuel cell cathode is very important. Herein, we have exploited two crystallographic thiophene-sulfur covalent organic frameworks(COFs), termed JUC-607 and JUC-608, as electrocatalysts that exhibited good ORR performances. These thiophene-sulfur COFs exhibited high stability, and their functional groups acting as active centers in the ORR can be precisely determined. Notably, due to a larger aperture for mass transfer and electrons transport, JUC-608 displayed a growing electrochemical performance, leading to a better ORR activity. Thus, this study will provide a new strategy for designing heteroatom-based COF materials for high-performance electrochemical catalysis.  相似文献   

17.
以三维刚性结构的三蝶烯为单体, 通过简单的Friedel-Crafts烷基化反应制备得到高比表面积的三蝶烯基多孔有机聚合物(TPOP), 在TPOP中接枝乙二胺和氯乙酸钠, 构建了广谱重金属离子吸附剂(TPOP-CH2EDTA). 获得的TPOP-CH2EDTA具有微孔/介孔结构, 其微孔尺寸为1.6 nm, BET比表面积为634 m2/g, 利于重金属离子传递和配位作用的强化. TPOP-CH2EDTA对重金属离子具有吸附广谱性, 其对Ag(Ⅰ), Cu(Ⅱ), Ni(Ⅱ), Zn(Ⅱ), Co(Ⅱ), Sn(Ⅳ), Pb(Ⅱ), Cd(Ⅱ), Fe(Ⅲ)和Cr(Ⅲ)等10种重金属离子的去除率均高于98%. 以Pb(Ⅱ)为典型的重金属污染物, 通过Langmuir模型计算得到Pb(Ⅱ)的最大吸附容量高达184.5 mg/g; 具有拟二级吸附动力学特征, 吸附速率快, 动力学常数k2为0.0173 g·mg?1·min?1; 经过5次循环使用后, Pb(Ⅱ)的去除效率仍高达95.8%. TPOP-CH2EDTA对混合溶液中Pb(Ⅱ)和Cu(Ⅱ)的去除率均高于99%, 且对含有大量无机盐[如Ca(Ⅱ), Mg(Ⅱ), K(Ⅰ)和Na(Ⅰ)离子]和有机化合物的复杂真实水体系, Pb(Ⅱ)和Cu(Ⅱ)的去除效率仍高于90%. 因此, 通过调控多孔有机聚合物微观结构(如比表面积、 孔径和吸附位点密度)而构筑的广谱性重金属吸附材料, 为协同去除复杂水系统中混合重金属离子提供了方案.  相似文献   

18.
Constructing three-dimensional (3D) structural characteristics on two-dimensional (2D) covalent organic frameworks (COFs) is a good approach to effectively improve the permeability and mass transfer rate of the materials and realize the rapid adsorption for guest molecules, while avoiding the high cost and monomer scarcity in preparing 3D COFs. Herein, we report for the first time a series of colyliform crystalline 2D COFs with quasi-three-dimensional (Q-3D) topologies, consisting of unique “stereoscopic” triangular pores, large interlayer spacings and flexible constitutional units which makes the pores elastic and self-adaptable for the guest transmission. The as-prepared QTD-COFs have a faster adsorption rate (2.51 g h−1) for iodine than traditional 2D COFs, with an unprecedented maximum adsorption capacity of 6.29 g g−1. The excellent adsorption performance, as well as the prominent irradiation stability allow the QTD-COFs to be applied for the rapid removal of radioactive iodine.  相似文献   

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