色谱 ›› 2026, Vol. 44 ›› Issue (2): 119-133.DOI: 10.3724/SP.J.1123.2025.06010
李菲1, 贾保林1, 胡乔2, 何锡文2, 陈朗星2,*(
), 张玉奎2,3
收稿日期:2025-07-08
出版日期:2026-02-08
发布日期:2026-02-05
通讯作者:
陈朗星
基金资助:
LI Fei1, JIA Baolin1, HU Qiao2, HE Xiwen2, CHEN Langxing2,*(
), ZHANG Yukui2,3
Received:2025-07-08
Online:2026-02-08
Published:2026-02-05
Contact:
CHEN Langxing
Supported by:摘要:
分子印迹技术是一种新兴的,通过模拟抗体-抗原或酶-底物之间的相互作用,制备对模板分子具有特异性识别功能的分子印迹聚合物(MIPs)的技术。传统MIPs的制备方法因受限于形状不均匀、分子识别构象选择少、聚合随机不可控、威胁环境安全等弊端而面临严峻挑战,合成方法亟待革新。近年来,随着绿色化学理念的提出与绿色合成方法的发展,分子印迹聚合物逐渐向更绿色的方向迁移。绿色分子印迹聚合物(GMIPs)的制备旨在替代传统方法,减少在合成过程中溶剂的使用和废液的产生、使用安全无毒的试剂和溶剂、发展高效合成方法提高能源效率等。采用的绿色溶剂水、超临界二氧化碳、低共熔溶剂和离子液体替代传统MIPs合成中使用的有机溶剂;具有生物相容性、环境友好型的功能单体壳聚糖、纤维素、衣康酸、多巴胺和环糊精在MIPs的制备中获得更多的应用。另外,MIPs的制备技术逐步向资源节约和环境友好型过渡,绿色沉淀聚合法、微波辅助合成、超临界流体技术、超声辅助聚合以及计算机模拟辅助设计等新型合成方法的出现,实现了MIPs制备方法绿色化的快速推进。这些新型制备方法通过精准调控反应条件、降低能耗、减少有害副产物,显著提高了MIPs的功能性和环境兼容性,不仅优化了MIPs的合成效率,还为解决传统方法在形态控制和规模化生产中的瓶颈问题提供了新思路。绿色分子印迹聚合物凭借其高选择性、稳定性和可定制性,在多个前沿领域展现出突破性应用。本文综述了近年来绿色分子印迹聚合物的新型制备方法及其在环境监测、食品安全、生物医学等领域的应用情况,并对绿色分子印迹聚合物的发展进行了展望。
中图分类号:
李菲, 贾保林, 胡乔, 何锡文, 陈朗星, 张玉奎. 分子印迹聚合物:新型绿色制备方法与前沿应用综述[J]. 色谱, 2026, 44(2): 119-133.
LI Fei, JIA Baolin, HU Qiao, HE Xiwen, CHEN Langxing, ZHANG Yukui. Molecularly imprinted polymers: novel green preparation methods and cutting-edge applications review[J]. Chinese Journal of Chromatography, 2026, 44(2): 119-133.
| Sample | Analytes | Main material characterization | Reference |
|---|---|---|---|
| Water | Pb(Ⅱ), As(Ⅴ) | FT-IR, XRD, BET | [ |
| Water | sulfamethoxazole | HRSTEM,FT-IR, TGA | [ |
| Urine | perphenazine | HRTEM, FESEM, UV/vis | [ |
| Water | 4-nitrophenol | SEM, FT-IR, TEM | [ |
| Water | nitrophenol | SEM, BET, TG | [ |
| Milk | tetracycline | TEM, SEM, FS | [ |
| Milk | florfenicol | SEM, FT-IR | [ |
| Water | malachite green | FT-IR, SEM, EDS | [ |
| Water | Cd(Ⅱ), As(V) | FT-IR, XRD, TG | [ |
表1 微波辅助制备MIPs的应用示例
Table 1 Applications of microwave-assisted preparation of MIPs
| Sample | Analytes | Main material characterization | Reference |
|---|---|---|---|
| Water | Pb(Ⅱ), As(Ⅴ) | FT-IR, XRD, BET | [ |
| Water | sulfamethoxazole | HRSTEM,FT-IR, TGA | [ |
| Urine | perphenazine | HRTEM, FESEM, UV/vis | [ |
| Water | 4-nitrophenol | SEM, FT-IR, TEM | [ |
| Water | nitrophenol | SEM, BET, TG | [ |
| Milk | tetracycline | TEM, SEM, FS | [ |
| Milk | florfenicol | SEM, FT-IR | [ |
| Water | malachite green | FT-IR, SEM, EDS | [ |
| Water | Cd(Ⅱ), As(V) | FT-IR, XRD, TG | [ |
| Analyte | Main raw materials | Application prospect | Ref. |
|---|---|---|---|
| Bilobalide | MAM, TMPTA, ACN | biomedicine | [ |
| New recreational drugs | EGCG, ACE, NI, IA | criminal investigations | [ |
| As(Ⅲ) | UiO-66 MOF, MAA, EGDMA | environmental monitoring | [ |
| Triazole fungicides | MYC, TFMAA, EGDMA | food safety | [ |
| Tolfenpyrad | FeCl2, VTMS, EGDMA, 2-VP, DMF | food safety | [ |
| Thiamethoxam | AA, MAA, APV, EGDMA, AIBN | environmental monitoring | [ |
| Hydroxycamptothecin | TEOS, EGDMA, AIBN, MeOH, CHCl₃ | biomedicine | [ |
| Estrone | IA, PEG3A, AIBN | environmental monitoring | [ |
表2 计算机辅助制备MIPs的应用示例
Table 2 Applications of computer aided preparation of MIPs
| Analyte | Main raw materials | Application prospect | Ref. |
|---|---|---|---|
| Bilobalide | MAM, TMPTA, ACN | biomedicine | [ |
| New recreational drugs | EGCG, ACE, NI, IA | criminal investigations | [ |
| As(Ⅲ) | UiO-66 MOF, MAA, EGDMA | environmental monitoring | [ |
| Triazole fungicides | MYC, TFMAA, EGDMA | food safety | [ |
| Tolfenpyrad | FeCl2, VTMS, EGDMA, 2-VP, DMF | food safety | [ |
| Thiamethoxam | AA, MAA, APV, EGDMA, AIBN | environmental monitoring | [ |
| Hydroxycamptothecin | TEOS, EGDMA, AIBN, MeOH, CHCl₃ | biomedicine | [ |
| Estrone | IA, PEG3A, AIBN | environmental monitoring | [ |
| Applicable objects | Outstanding advantages | Ref. |
|---|---|---|
| Paclobutrazol | high selectivity, physical strength and high stability, high sensitivity | [ |
| Ultrasensitive dimethoate | high selectivity, excellent chemical stability, recoverability and low cost | [ |
| Pesticide residues | selective identification ability, wide application, customization, portable detection | [ |
| Nitro explosives | easy to synthesize, reusable, selective binding | [ |
| Large molecule and small molecule pollutants | multifunctional, environmentally friendly | [ |
表3 MIPs在环境监测中的应用示例
Table 3 Applications of MIPs in environmental monitoring
| Applicable objects | Outstanding advantages | Ref. |
|---|---|---|
| Paclobutrazol | high selectivity, physical strength and high stability, high sensitivity | [ |
| Ultrasensitive dimethoate | high selectivity, excellent chemical stability, recoverability and low cost | [ |
| Pesticide residues | selective identification ability, wide application, customization, portable detection | [ |
| Nitro explosives | easy to synthesize, reusable, selective binding | [ |
| Large molecule and small molecule pollutants | multifunctional, environmentally friendly | [ |
| Applicable objects | Outstanding advantages | Ref. |
|---|---|---|
| Ciprofloxacin | selectivity, sensitivity, stability, simplicity of preparation and cost-effectiveness | [ |
| Lambda-cyhalothrin | high degree of selectivity, simple preparation process and high practicability | [ |
| Hydrocortisone | resistant to high pressure and acid alkali corrosion, with fewer operating steps | [ |
| Thiamphenicol | no need for expensive antibodies or enzymes, simple and cost-effective detection process | [ |
| Organophosphorus | lower detection limit and quantitative limit, high selectivity and faster equilibrium adsorption time | [ |
| Norfloxacin | high selectivity, high adsorption capacity, reusable and high magnetic saturation value | [ |
| Cephalexin | selective and efficient, easy to separate, suitable for analysis of complex samples | [ |
表4 MIPs在食品安全分析中的应用示例
Table 4 Applications of MIPs in food safety analysis
| Applicable objects | Outstanding advantages | Ref. |
|---|---|---|
| Ciprofloxacin | selectivity, sensitivity, stability, simplicity of preparation and cost-effectiveness | [ |
| Lambda-cyhalothrin | high degree of selectivity, simple preparation process and high practicability | [ |
| Hydrocortisone | resistant to high pressure and acid alkali corrosion, with fewer operating steps | [ |
| Thiamphenicol | no need for expensive antibodies or enzymes, simple and cost-effective detection process | [ |
| Organophosphorus | lower detection limit and quantitative limit, high selectivity and faster equilibrium adsorption time | [ |
| Norfloxacin | high selectivity, high adsorption capacity, reusable and high magnetic saturation value | [ |
| Cephalexin | selective and efficient, easy to separate, suitable for analysis of complex samples | [ |
| Applicable objects | Outstanding advantages | Ref. |
|---|---|---|
| Amphetamines | excellent performance in selectivity, sensitivity, efficiency, and cost-effectiveness | [ |
| Griseofulvin | simple process, high selectivity, cost-effectiveness, minimal matrix interference, small sample size and solute dosage | [ |
| Epoxy triglyceride | convenient, with higher repeatability, efficient separation, and environmental friendliness | [ |
| Phthalate esters | high selectivity, high capacity, and low detection limit, suitable for sensitive determination of trace target analytes in complex samples | [ |
| Coumarins | high selectivity and extraction efficiency can achieve effective separation and detection of coumarin | [ |
| Bisphenol A | effective enrichment and detection of BPA, with a imprinting factor of 6.58 | [ |
Amphetamine Modafinil | highly selective, high-capacity, and fast kinetic properties effectively extract target compounds from complex matrices | [ |
表5 MIPs在样品固相萃取中的应用示例
Table 5 Applications of MIPs in sample solid phase extraction
| Applicable objects | Outstanding advantages | Ref. |
|---|---|---|
| Amphetamines | excellent performance in selectivity, sensitivity, efficiency, and cost-effectiveness | [ |
| Griseofulvin | simple process, high selectivity, cost-effectiveness, minimal matrix interference, small sample size and solute dosage | [ |
| Epoxy triglyceride | convenient, with higher repeatability, efficient separation, and environmental friendliness | [ |
| Phthalate esters | high selectivity, high capacity, and low detection limit, suitable for sensitive determination of trace target analytes in complex samples | [ |
| Coumarins | high selectivity and extraction efficiency can achieve effective separation and detection of coumarin | [ |
| Bisphenol A | effective enrichment and detection of BPA, with a imprinting factor of 6.58 | [ |
Amphetamine Modafinil | highly selective, high-capacity, and fast kinetic properties effectively extract target compounds from complex matrices | [ |
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