吉林大学学报(工学版) ›› 2026, Vol. 56 ›› Issue (3): 603-620.doi: 10.13229/j.cnki.jdxbgxb.20240884

• 综述 • 上一篇    

分子筛基复合材料的合成及应用研究进展

于凤芹(),梁鼎成,解强(),刘金昌   

  1. 中国矿业大学(北京) 化学与环境工程学院,北京 100083
  • 收稿日期:2024-09-08 出版日期:2026-03-01 发布日期:2026-03-31
  • 通讯作者: 解强 E-mail:fengqinyu2021@163.com;dr-xieq@cumtb.edu.cn
  • 作者简介:于凤芹(1994-),女,博士研究生. 研究方向:多孔材料.E-mail: fengqinyu2021@163.com
  • 基金资助:
    国家自然科学基金青年科学基金项目(22008255);中央高校基本科研业务费项目(2024ZKPYHH08)

Research progress on synthesis and application of zeolite⁃based composites

Feng-qin YU(),Ding-cheng LIANG,Qiang XIE(),Jin-chang LIU   

  1. School of Chemical & Environmental Engineering,China University of Mining and Technology (Beijing),Beijing 100083,China
  • Received:2024-09-08 Online:2026-03-01 Published:2026-03-31
  • Contact: Qiang XIE E-mail:fengqinyu2021@163.com;dr-xieq@cumtb.edu.cn

摘要:

传统分子筛存在传质阻力大,吸附量有限等问题,将其与活性炭、硅藻土等复合,形成具有协同作用的复合材料,是满足多元化需求、拓展应用领域的重要途径。本文围绕复合分子筛、分子筛-客体材料复合材料两个方面评介分子筛基复合材料制备方法的研究进展,梳理其在吸附分离、催化等领域的应用。结果表明:复合分子筛常用的合成策略有模板法、溶胶-凝胶法和分子筛硅源法等,但得到的复合材料结构不稳定,易发生相分离。分子筛-客体材料复合材料的合成方法多样,其中的静电自组装法和溶液共混法可实现与多种类型客体材料组合使用,但存在过程复杂、溶剂依赖性强等问题。尽管分子筛基复合材料在吸附分离、工业催化方面应用前景广阔,但其在气相有机污染物(尤其是VOCs)吸附中的研究仍显不足。未来研究应重点开发温和、环保的合成策略,包括但不限于低温低压合成方法、环保型溶剂体系等,以推动分子筛基复合材料的实际应用。

关键词: 分子筛, 复合材料, 合成, 应用, 进展

Abstract:

The traditional zeolite with high mass transfer resistance and limited adsorption capacity, limits its application. Combining zeolite with activated carbon, diatomite, and other materials to construct composite materials with synergistic effects is the important technical ways to meet diversified needs and expand application fields. This paper conducted a critical survey on the research progress in synthesis method of zeolite-based composites, focusing on two aspects: composite zeolites and zeolite-guest material composites, and then summarized their applications in adsorption separation, catalysis, and other fields. The results showed that common synthesis strategies of composite zeolites comprise template method, sol-gel method, and zeolite silicon source method, but had disadvantages in structural instability of composites. Among these synthesis methods of zeolite-guest material composites, electrostatic self-assembly and solution blending methods can be used in combination with various types of guest materials, were promising approach to preparing zeolite- guest material composites. Meanwhile, they had disadvantages in complex processes and high solvent dependence. Despite the broad application prospects of zeolite-based composite materials in adsorption separation and industrial catalysis, research on their adsorption of gaseous organic pollutants, especially VOCs, remains limited. Universal synthesis strategies under mild conditions, such as low-temperature and low-pressure synthesis methods, as well as environmentally friendly solvent systems, should be developed in the future to promote the practical application of zeolite-based composites.

Key words: zeolites, composite, synthesis, application, progress

中图分类号: 

  • TB332

图1

复合分子筛的结构示意图"

表1

传统复合分子筛主要制备方法及其优缺点"

制备方法优点缺点复合分子筛参考文献
原位合成法单模板法过程简单、组分均匀分布成本高、产率低、重复性低MOR-EU-124
MCM-41-ZSM-525
双模板法孔径大小可控、易操作控制结晶度低、成本高、二次污染ZSM-5-SBA-1526
后合成法附晶生长法结构可控、适用范围广、操作简单产率低MCM-41-FAU27
MCM-41-MOR28
Y-MCM-4129
分子筛硅源法结构可控、灵活性强工艺复杂、分子筛结构易破坏ZSM-5-Beta19
Beta-MCM-48[30]
Beta-MCM-4131
Y-ZSM-516
ZSM-5-SBA-1532
纳米组装法易操作控制、结构可控成本高、重复性差Beta-MCM-4133
ZSM-5-MCM-4134
ZSM-5-MCM-4835
两步晶化法结构可控、易于调节条件苛刻、过程复杂Y-ZSM-536
ZSM-5-SBA-1537

图2

SAPO-34@ZSM-5复合材料构建过程示意图"

表2

核壳结构复合分子筛的主要制备方法及结构特征"

制备方法复合分子筛比表面积/(m2·g-1总孔容/(cm3·g-1微孔孔容/(cm3·g-1参考文献
包埋法MFI@FAU---50
MFI@CHA2230.1720.10321
MCM-41@MFI4410.23-51
两步晶化法FAU@MFI3240.1550.0952
气溶胶法MFI@MCM-417760.216-53
离子交换法FAU@BEA5300.320.1954
CHA@MFI3900.370.1555
溶胶-凝胶法MFI@MCM-415960.510.05556
MFI@SBA-154140.450.1457
MFI@MCM–41815.20.510.0358
MFI@CHA5720.310.2959
LTA@MCM-419510.520.2160
FAU@MCM-417020.380.1361

图3

纳米纯硅沸石/硅藻土复合材料制备流程图"

表3

分子筛-活性炭复合材料制备方法及结构特征"

原料合成方法比表面积/(m2·g-1总孔容/(cm3·g-1吸附质参考文献
活性炭、分子筛物理混合氨氮86
84.73偶氮染料酸性橙787
1 170.1 mg/g(碘值)Zn2+、Cu2+、Cd2+、Pb2+88
煤矸石CO活化-水热669.4Cu2+、罗丹明-B89
炭化-CO2活化-水热8880.630氨氮90
NaOH碱溶-水热Zn2+、Cu2+、Pb2+、Ni2+91
CO2活化-水热1 0180.765CH4、N292
煤矸石、沥青粉CO2活化-水热6570.537CO293
8720.590苯酚94
粉煤灰、木屑炭化-Na2CO3活化-水热840.1509596
粉煤灰NaOH碱熔-水热620.310Pb(Ⅱ)97
Ni2+、Cu2+、Cd2+、Pb2+98
苹果壳、ZSM-5凝胶炭化-活化-水热(蒸汽辅助)1 2964.200Cd2+、Pb2+99
甘蔗渣灰KOH活化-NaOH碱溶-水热9670.445Cd2+、苯酚100
坚果壳炭化-CO2活化-水热4180.489亚甲蓝101
柏木屑H3PO4活化-水热3780.300氨氮、亚甲蓝102
棕榈油灰NaOH熔融活化-水热615亚甲蓝103
活性炭、硅酸钠、铝酸钠、NaOH水热656CO2、N282

表4

分子筛-聚合物复合材料制备方法"

制备方法优点缺点复合材料参考文献
溶液共混法操作简便、适用范围广分散性差、溶剂要求高壳聚糖/分子筛104-106
聚丙烯腈/分子筛107
原位聚合法界面结合力强、分散性好、结构可控反应条件苛刻聚苯胺/分子筛108
聚丙烯酰胺/分子筛109
聚(AN-co-VP)/分子筛9
熔融共混法简便易行、效率高、操作性强、成本低能耗高聚丙烯/分子筛110
溶胶-凝胶法灵活性强、均匀性好成本高、周期长壳聚糖/分子筛111

表5

常见分子筛基复合材料制备方法比较"

复合材料制备方法过 程优点缺点参考文献
复合分子筛模板法

采用单/双模板剂,通过控制合成条件在同一个反应系统中同步生成两种不同

类型的分子筛

工艺简单、孔隙及结构可控二次污染、成本高2425123
附晶生长法以一种分子筛为晶种,引导指定的单元结构在其表面附晶生长出另一种分子筛

结构可控、适用

范围广、易操作

合成量少29124
溶胶-凝胶法将前驱体在溶剂中混合形成溶胶,经过凝胶化、干燥和热处理得到复合分子筛

反应条件温和、

均匀性好

周期长56-58
分子筛硅源法利用已有分子筛作为硅铝源,在其基础上引入其他成分,通过溶解、重结晶或进一步生长,形成复合分子筛结构可控工艺复杂、结构易破坏1619, 30, 32
分子筛-硅藻土复合材料物理法将分子筛与硅藻土直接机械混合易操作、产量高、无污染

结合不牢固、机械

强度差、性能差

64-67
静电自组装法

以硅藻土为载体,季铵盐为媒介,

耦合水热反应制备

材料结晶度高产量少、过程复杂77-79
分子筛-活性炭复合材料物理法分子筛、活性炭和黏结剂进行机械混合后挤压成型

易操作、产量高

无污染

结合强度低、机械强度差、性能差818688
炭化-活化-水热法以工业、农副产业废弃物为原料,通过碱浸、炭化、活化和水热处理等工艺,将其中的有机质炭转化为多孔炭,无机质转化为分子筛

成本低廉、

储量丰富

工艺繁杂

调控困难

周期长

8994125126
水热法

向分子筛合成液中直接添加活性炭,

随后进行水热晶化

操作简单、

工艺成熟

产量少

负载量低

8284
分子筛-聚合物复合材料溶液共混法分子筛和聚合物分别分散在合适溶剂中,然后将两种溶液混合并除去溶剂

操作简便、

适用范围广

分散性差

溶剂要求高

104-106
原位聚合法分子筛作为模板直接添加到聚合物的单体溶液中,然后引发聚合反应界面结合力强、分散性好、结构可控反应条件苛刻108109127

表6

分子筛基复合材料的典型应用"

应用领域复合材料污染物参考文献
液相吸附分子筛-活性炭单甲基硅烷三醇、二甲基硅烷二醇、二甲基砜84
分子筛-活性炭亚甲基蓝、Pb134
丝光沸石-活性炭氨氮,COD135
4A分子筛-活性炭己烷、Cu2+/Ni2+/Zn2+/Pb2+91
TS-1-硅藻土亚甲基蓝76
分子筛-聚铵阳离子硫酸盐136
分子筛-聚丙烯酰胺甲基叔丁基醚137
磁性分子筛-壳聚糖Cr(Ⅵ)138
斜发沸石-壳聚糖UO22+/Th4+139
TiO2/分子筛PO43-140
气相吸附13X分子筛-活性炭水蒸气141
MFI分子筛-硅藻土7778
Beta-硅藻土丙酮、乙酸乙酯、甲苯79
ZSM-5-MCM-41、ZSM-5-Silicalite-1甲苯129
Y-ZSM-5甲苯、环己烷、乙酸丁酯、甲基乙基酮、异丙醇142
ZSM-5-SBA-15甲苯130
多相催化MFI@MFI苯、甲醇47
TS-1-硅藻土苯酚、H2O264
FeZSM-5-聚苯胺草甘膦143
ZSM-5-SBA-15异丙苯裂解144
AC@ZSM-5CH4,轻质烃145
Beta@YVGO油加氢裂化146
Beta-MCM-41甲苯-丙烯烷基化反应120
ZSM-5-SBA-15二苯并噻吩加氢脱硫147
MCM-41-Beta废油裂解148
Y-MCM-41催化裂化149
HZSM-5@Al-MCM-41正十二烷150
Beta-YNO151
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