Chinese Journal of Chromatography ›› 2026, Vol. 44 ›› Issue (2): 119-133.DOI: 10.3724/SP.J.1123.2025.06010
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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:CLC Number:
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.
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URL: https://www.chrom-china.com/EN/10.3724/SP.J.1123.2025.06010
| 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 | [ |
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 | [ |
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 | [ |
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 | [ |
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 | [ |
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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