Stimuli-responsive molecularly imprinted materials: Fundamentals and applications

Mark V. Sullivan , Perrine Lasserre , Chester Blackburn , Nicholas W. Turner , Börje Sellergren

Responsive Materials ›› 2025, Vol. 3 ›› Issue (1) : e20240032

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Responsive Materials ›› 2025, Vol. 3 ›› Issue (1) : e20240032 DOI: 10.1002/rpm.20240032
REVIEW ARTICLE

Stimuli-responsive molecularly imprinted materials: Fundamentals and applications

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Abstract

Stimuli-responsive molecularly imprinted polymers (MIPs) are exciting smart materials that are gaining substantial interest within the research community due to their versatility and possible widespread applications in biosensing, biomedicine and diagnostics, as well as chromatography and separation sciences. These materials offer significant advantages as recognition materials over their biological counter-parts (antibodies) because of their ease and low cost of production along with their robustness and resistance to the extremes of temperature and pH. This much needed review aims to provide an updated summary of the various stimuli-responsive MIPs reported to date including those relying on thermo, pH, photo, biomolecule, ion, magnetic and electrical stimuli and includes their design and synthesis. The review also explores the potential applications of the stimuli-responsive MIPs, particularly in the fields of biosensors and diagnostics, along with biological imaging, drug delivery, disease treatments and interventions and the separation of targets from complex media. The advantages and disadvantages of the current stimuli-responsive MIPs set out in the review, allows for researchers to gather a concise understanding of these smart-materials and should pave the way for new methods of development and real-world applications. We believe the review is a helpful and necessary guide for the future evolution and application of stimuli-responsive MIPs.

Keywords

biomedicine / diagnostics / molecularly imprinted polymers / recognition materials / smart materials / stimuli responsive

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Mark V. Sullivan, Perrine Lasserre, Chester Blackburn, Nicholas W. Turner, Börje Sellergren. Stimuli-responsive molecularly imprinted materials: Fundamentals and applications. Responsive Materials, 2025, 3(1): e20240032 DOI:10.1002/rpm.20240032

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References

[1]

G. Wulff, Angew. Chem., Int. Ed. 1995, 34, 1812.

[2]

L. Chen, X. Wang, W. Lu, X. Wu, J. Li, Chem. Soc. Rev. 2016, 45, 2137.

[3]

B. Sellergren, A. J. Hall, in Supramolecular Chemistry: From Molecules to Nanomaterials (Eds: J. W. Steed, P. A. Gale, Eds.), John Wiley &Sons Ltd, Chichester, UK 2012, pp. 3255–3282.

[4]

H. Zhang, Adv. Mater. 2020, 32, 1806328.

[5]

Y. Ge, B. Butler, F. Mirza, S. Habib-Ullah, D. Fei, Macromol. Rapid Commun. 2013, 34, 903.

[6]

B. Tse Sum Bui, A. Mier, K. Haupt, Small 2023, 19, 2206453.

[7]

G. Moad, D. H. Solomon, The Chemistry of Free Radical Polymerization, Elsevier Science Ltd., 1995.

[8]

B. Sellergren (Ed.) In Techniques and Instrumentation in Analytical Chemistry, Elsevier Science B.V., Amsterdam, Vol. 23 2001.

[9]

A. G. Mayes, M. J. Whitcombe, Adv. Drug Deliv. Rev. 2005, 57, 1742.

[10]

F. Ding, Y. Ma, W. Fan, J. Xu, G. Pan, Trends Biotechnol. 2024, 42, 1097.

[11]

O. Hayden, P. A. Lieberzeit, D. Blaas, F. L. Dickert, Adv. Funct. Mater. 2006, 16, 1269.

[12]

M. P. Tiwari, A. Prasad, Anal. Chim. Acta 2015, 853, 1.

[13]

Q. Yang, X. Wu, H. Peng, L. Fu, X. Song, J. Li, H. Xiong, L. Chen, Talanta 2018, 176, 595.

[14]

L. Zhai, Chem. Soc. Rev. 2013, 42, 7148.

[15]

F. Lanza, B. Sellergren, Adv. Chromatogr. 2001, 41, 137.

[16]

N. Masque, R. M. Marce, F. Borrull, Trends Anal. Chem. 2001, 20, 477.

[17]

M. Szumski, B. Buszewski, J. Sep. Sci. 2004, 23, 837.

[18]

W. Chen, Y. Ma, J. Pan, Z. Meng, G. Pan, B. Sellergren, Polym. 2015, 7, 1689.

[19]

M. V. Sullivan, F. Allabush, H. Flynn, B. Balansethupathy, J. A. Reed, E. T. Barnes, C. Robson, P. O’Hara, L. J. Milburn, D. Bunka, A. Tolley, P. M. Mendes, J. H. R. Tucker, N. W. Turner, Glob. Challenges 2023, 7, 2200215.

[20]

Y. Zhang, Q. Wang, X. Zhao, Y. Ma, H. Zhang, G. Pan, Molecules 2023, 28, 918.

[21]

S. Xu, H. Lu, X. Zheng, L. Chen, J. Mater. Chem. C. 2013, 1, 4406.

[22]

H. Musarurwa, N. Tawanda Tavengwa, Microchem. J. 2022, 181, 107750.

[23]

R. D. Arrua, M. C. Strumia, C. I. Alvarez Igarzabal, Materials 2009, 2, 2429.

[24]

C. Liang, Z. Zhang, H. Zhang, L. Ye, J. He, J. Ou, Q. Wu, Food Chem. 2020, 309, 125680.

[25]

A. N. Hasanah, N. Safitri, A. Zulfa, N. Neli, D. Rahayu, Molecules 2021, 26, 5612.

[26]

F. Yemiş, P. Alkan, B. Yenigül, M. Yenigül, Polym. Polym. Compos. 2013, 21, 145.

[27]

A. Rachkov, N. Minoura, Biochimica Biophysica Acta (BBA) -Protein Struct. Mol. Enzym. 2001, 1544, 255.

[28]

G. Pan, S. Shinde, S. Y. Yeung, M. Jakštaitė, Q. Li, A. G. Wingren, B. Sellergren, Angew. Chem., Int. Ed. 2017, 56, 15959.

[29]

L. Resina, C. Alemán, F. C. Ferreira, T. Esteves, Biotechnol. Adv. 2023, 68, 108220.

[30]

M. V. Sullivan, C. Fletcher, R. Armitage, C. Blackburn, N. W. Turner, Nanoscale Adv. 2023, 5, 5352.

[31]

V. L. V Granado, M. T. S. R. Gomes, A. Rudnitskaya, Methods Mol. Biol. 2019, 2027, 151.

[32]

M. R. Halhalli, B. Sellergren, Chem. Commun. 2013, 49, 7111.

[33]

M. V. Sullivan, S. R. Dennison, J. M. Hayes, S. M. Reddy, Biomed. Phys. Eng. Express 2021, 7, 45025.

[34]

D. Kotlarek, K. Liu, N. G. Quilis, D. Bernhagen, P. Timmerman, P. Kouwer, J. Dostalek, J. Phys. Chem. C 2021, 125, 12960.

[35]

H. F El-Sharif, N. W. Turner, S. M. Reddy, M. V. Sullivan, Talanta 2022, 240, 123158.

[36]

A. Mateescu, Y. Wang, J. Dostalek, U. Jonas, Membr. 2012, 2, 40.

[37]

T. Matsunaga, T. Hishiya, T. Takeuchi, Anal. Chim. Acta 2007, 591, 63.

[38]

B. Fresco-Cala, A. D. Batista, S. Cárdenas, Molecules 2020, 25, 4740.

[39]

F. Canfarotta, A. Cecchini, S. Piletsky, in Polymer Chemistry Series, Royal Society of Chemistry, Chichester, UK 2018, pp. 1–27.

[40]

S. S. Piletsky, A. E. G. Cass, E. V. Piletska, J. Czulak, S. A. Piletsky, ChemNanoMat 2018, 4, 1214.

[41]

N. Perez-Moral, A. G. Mayes, Langmuir 2004, 20, 3775.

[42]

W. Wan, M. Biyikal, R. Wagner, B. Sellergren, K. Rurack, Angew Chem., Int. Ed. 2013, 52, 7023.

[43]

S. Bhogal, K. Kaur, A. K. Malik, C. Sonne, S. S. Lee, K.-H. Kim, TrAC, Trends Anal. Chem. 2020, 133, 116043.

[44]

M. V. Sullivan, B. Dean, A. Mates, M. E. Farrow, C. Fletcher, M. German, R. Patel, N. W. Turner, Nano Express 2023, 4, 025002.

[45]

D. Liu, Q. Yang, S. Jin, Y. Song, J. Gao, Y. Wang, H. Mi, Acta Biomater. 2014, 10, 769.

[46]

R. M. Roland, S. A. Bhawani, M. N. M. Ibrahim, BMC Chem. 2023, 17, 165.

[47]

H. Pu, L. Xu, Macromol. Chem. Phys. 2022, 223.

[48]

J. Wang, Y. Cheng, R. Peng, Q. Cui, Y. Luo, L. Li, Colloids Surf. A Physicochem. Eng. Asp. 2020, 587, 124342.

[49]

Ç. Öter, Ö. S. Zorer, Chem. Eng. J. Adv. 2021, 7, 100118.

[50]

D. Korol, A. Kisiel, M. Cieplak, A. Michalska, P. S. Sharma, K. Maksymiuk, Sens. Actuators B Chem. 2023, 382, 133476.

[51]

F. Canfarotta, A. Poma, A. Guerreiro, S. A. Piletsky, Nat. Protoc. 2016, 11, 443.

[52]

M. Berghaus, R. Mohammadi, B. Sellergren, Chem. Commun. 2014, 50, 8993.

[53]

A. Henderson, M. V. Sullivan, R. A. Hand, N. W. Turner, J. Mater. Chem. B 2022, 10, 6792.

[54]

L. Altomare, L. Bonetti, C. E. Campiglio, L. De Nardo, L. Draghi, F. Tana, S. Farè, Int. J. Artif. Organs 2018, 41, 337.

[55]

Y. Kotsuchibashi, Polym. J. 2020, 52, 681.

[56]

R. M. Daniel, M. Dines, H. H. Petach, Biochem. J. 1996, 317, 1.

[57]

J. Li, J. Fu, Q. Yang, L. Wang, X. Wang, L. Chen, Analyst 2018, 143, 3570.

[58]

K. Jain, R. Vedarajan, M. Watanabe, M. Ishikiriyama, N. Matsumi, Polym. Chem. 2015, 6, 6819.

[59]

T. Hien Nguyen, R. J. Ansell, J. Mol. Recogn. 2012, 25, 1.

[60]

G. Pan, Q. Guo, Y. Ma, H. Yang, B. Li, Angew. Chem., Int. Ed. 2013, 52, 6907.

[61]

Y. Toyoshima, A. Kawamura, Y. Takashima, T. Miyata, J. Mater. Chem. B 2022, 10, 6644.

[62]

Z. Si, P. Yu, Y. Dong, Y. Lu, Z. Tan, X. Yu, R. Zhao, Y. Yan, Front. Chem. 2019, 6.

[63]

S. Li, M. Zhu, M. J. Whitcombe, S. A. Piletsky, A. P. F. Turner, in Molecularly Imprinted Catalysts, Elsevier 2016, pp. 1–17.

[64]

M. Watanabe, T. Akahoshi, Y. Tabata, D. Nakayama, J. Am. Chem. Soc. 1998, 120, 5577.

[65]

Y. Ma, Y. Yin, L. Ni, H. Miao, Y. Wang, C. Pan, X. Tian, J. Pan, T. You, B. Li, G. Pan, Bioact. Mater. 2021, 6, 1308.

[66]

Y. Hoshino, T. Kodama, Y. Okahata, K. J. Shea, J. Am. Chem. Soc. 2008, 130, 15242.

[67]

Z. Zeng, Y. Hoshino, A. Rodriguez, H. Yoo, K. J. Shea, ACS Nano 2010, 4, 199.

[68]

F. Canfarotta, S. A. Piletsky, N. W. Turner, Methods Mol. Biol. 2020, 2073, 183.

[69]

R. D’Aurelio, I. E. Tothill, M. Salbini, F. Calò, E. Mazzotta, C. Malitesta, I. Chianella, Nanomaterials 2021, 11, 3360.

[70]

R. D’Aurelio, I. Chianella, J. A. Goode, I. E. Tothill, Biosens. 2020, 10, 22.

[71]

A. T. Silva, R. Figueiredo, M. Azenha, P. A. S. Jorge, C. M. Pereira, J. A. Ribeiro, ACS Sens. 2023, 8, 2898.

[72]

J. McClements, L. Bar, P. Singla, F. Canfarotta, A. Thomson, J. Czulak, R. E. Johnson, R. D. Crapnell, C. E. Banks, B. Payne, S. Seyedin, P. Losada-Pérez, M. Peeters, ACS Sens. 2022, 7, 1122.

[73]

A.-I. Bărăian, B.-C. Iacob, O. Soriţău, I. Tomuţă, L. R. Tefas, L. Barbu-Tudoran, S. Şuşman, E. Bodoki, Polym. 2023, 15, 965.

[74]

A.-I. Bărăian, B.-C. Iacob, A. E. Bodoki, E. Bodoki, Int. J. Mol. Sci. 2022, 23, 14071.

[75]

Y. Yin, L. Guan, Y. Wang, Y. Ma, J. Pan, Y. Peng, G. Pan, Colloid Interf. Sci Commun 2021, 42, 100421.

[76]

P. Singla, T. Broughton, M. V. Sullivan, S. Garg, R. Berlinguer-Palmini, P. Gupta, K. J. Smith, B. Gardner, F. Canfarotta, N. W. Turner, E. Velliou, S. Amarnath, M. Peeters, Adv. Sci. 2024, 11, 2309976.

[77]

P. H. Nguyen, M. B. Schmithorst, T. E. Mates, R. A. Segalman, M. L. Chabinyc, J. Mater. Chem. C 2023, 11, 7462.

[78]

S. Saroj, S. J. Rajput, Drug Dev. Ind. Pharm. 2018, 44, 1198.

[79]

S. Javanbakht, A. Saboury, A. Shaabani, R. Mohammadi, M. Ghorbani, ACS Appl. Bio Mater. 2020, 3, 4168.

[80]

Y.-T. Qin, Y.-S. Feng, Y.-J. Ma, X.-W. He, W.-Y. Li, Y.-K. Zhang, ACS Appl. Mater. Interfaces 2020, 12, 24585.

[81]

M. Garg, N. Pamme, TrAC, Trends Anal. Chem. 2024, 170, 117437.

[82]

Z. Karimi Baker, S. sardari, Iran. Biomed. J. 2021, 25, 68.

[83]

M. V. Sullivan, S. Nanalal, B. E. Dean, N. W. Turner, Talanta 2024, 266, 125083.

[84]

M. V. Sullivan, A. Henderson, R. A. Hand, N. W. Turner, Anal. Bioanal. Chem. 2022, 414, 3687.

[85]

C. Gong, Y. Yang, Y. Yang, A. Zheng, S. Liu, Q. Tang, J. Colloid Interface Sci. 2016, 481, 236.

[86]

T. Sajini, B. Mathew, Talanta Open 2021, 4, 100072.

[87]

Y. Zou, H. Gao, C. Su, M. Wang, J. Gao, J. Polym. Res. 2024, 31, 34.

[88]

Z. Liu, Z. Chen, S. Yang, H. Jia, J. Wei, ACS Appl. Nano Mater. 2023, 6, 20210.

[89]

C.-W. Chang, C.-T. Wu, Y.-L. Lin, L.-R. Lee, H.-W. Lin, B. Gautam, Y.-H. Tseng, C.-W. Liao, C.-T. Chang, J.-T. Chen, ACS Appl. Polym. Mater. 2023, 5, 4210.

[90]

N. Ye, Y. Pei, Q. Han, L. Y. Jin, Soft Matter 2023, 19, 1540.

[91]

S. Osella, G. Granucci, M. Persico, S. Knippenberg, J. Mater. Chem. B 2023, 11, 2518.

[92]

S. L. Barrett, C. Meyer, E. Cwiklik, V. Fieglein, M. Burns, J. Guerrero, W. J. Brittain, J. Photochem. Photobiol. Chem. 2024, 446, 115114.

[93]

J. Dai, Z. Wang, Z. Wu, Z. Fang, S. Heliu, W. tao Yang, Y. Bai, X. Zhang, ACS Appl. Polym. Mater. 2023, 5, 2575.

[94]

X. Ding, Y. Shi, S. Xu, Y. Zhang, J. Du, J. Qiu, Small 2023, 19, 2205797.

[95]

N. Minoura, K. Idei, A. Rachkov, H. Uzawa, K. Matsuda, Chem. Mater. 2003, 15, 4703.

[96]

C.-B. Gong, Y.-Z. Yang, C. Gao, Q. Tang, C.-F. Chow, J.-D. Peng, M. H.-W. Lam, J. Sol. Gel Sci. Technol. 2013, 67, 442.

[97]

L. Fang, S. Chen, X. Guo, Y. Zhang, H. Zhang, Langmuir 2012, 28, 9767.

[98]

L. Liu, M. Chen, H. Yang, Z. Huang, Q. Tang, C. Chow, C. Gong, M. Zu, B. Xiao, Mater. Sci. Eng. C 2020, 106, 110253.

[99]

C. Gong, K.-L. Wong, M. H. W. Lam, Chem. Mater. 2008, 20, 1353.

[100]

G. Liu, M. Wang, H. Gao, C. Cui, J. Gao, Eur. Polym. J. 2021, 161, 110828.

[101]

R. Yoshida, K. Uchida, Y. Kaneko, K. Sakai, A. Kikuchi, Y. Sakurai, T. Okano, Nature 1995, 374, 240.

[102]

Y. Zhang, D. Zhang, H. Liu, Polym. 2019, 11, 708.

[103]

K. Alanazi, A. Garcia Cruz, S. Di Masi, A. Voorhaar, O. S. Ahmad, T. Cowen, E. Piletska, N. Langford, T. J. Coats, M. R. Sims, S. A. Piletsky, Sens. Actuators B Chem. 2021, 329, 129128.

[104]

T. Miyata, Polym. J. 2010, 42, 277.

[105]

M. V. Sullivan, O. Clay, M. P. Moazami, J. K. Watts, N. W. Turner, Macromol. Biosci. 2021, 21, e2100002.

[106]

M. V. Sullivan, F. Allabush, D. Bunka, A. Tolley, P. M. Mendes, J. H. R. Tucker, N. W. Turner, Polym. Chem. 2021, 12, 4405.

[107]

L.-Y. Chu, T. Yamaguchi, S. Nakao, Adv. Mater. 2002, 14, 386.

[108]

S. Shinde, M. Mansour, A. Incel, L. Mavliutova, C. Wierzbicka, B. Sellergren, Chem. Sci. 2020, 11, 4246.

[109]

S. Shinde, M. Mansour, L. Mavliutova, A. Incel, C. Wierzbicka, H. I Abdel-Shafy, B. Sellergren, ACS Omega 2022, 7, 587.

[110]

S. Shinde, A. Incel, M. Mansour, G. D. Olsson, I. A. Nicholls, C. Esen, J. Urraca, B. Sellergren, J. Am. Chem. Soc. 2020, 142, 11404.

[111]

L. Mavliutova, E. Verduci, S. A. Shinde, B. Sellergren, ACS Omega 2021, 6, 12229.

[112]

M. J. Langton, C. J. Serpell, P. D. Beer, Angew. Chem., Int. Ed. 2016, 55, 1974.

[113]

J. Zhai, M. Zhao, X. Cao, M. Li, M. Zhao, J. Am. Chem. Soc. 2018, 140, 16925.

[114]

W. Lu, S. Fu, X. Lang, H. Zhao, D. Zhu, S. Cao, L. Chen, J. Li, J. Chromatogr. A 2024, 1731, 465196.

[115]

X. Wu, X. Wang, W. Lu, X. Wang, J. Li, H. You, H. Xiong, L. Chen, J. Chromatogr. A 2016, 1435, 30.

[116]

Y. Zhao, C. Bi, X. He, L. Chen, Y. Zhang, RSC Adv. 2015, 5, 70309.

[117]

J. Li, Y. Wang, X. Yu, Front. Chem. 2021, 9, 706311.

[118]

Z. Liu, Y. Wang, F. Xu, X. Wei, J. Chen, H. Li, X. He, Y. Zhou, Anal. Chim. Acta 2020, 1129, 49.

[119]

Z. Ali, M. Sajid, S. Manzoor, M. M. Ahmad, M. I. Khan, N. Elboughdiri, M. Kashif, A. Shanableh, W. Rajhi, W. Mersni, E. Bayraktar, S. Ben Salem, ACS Omega 2022, 7, 28516.

[120]

X. Ni, X. Tang, D. Wang, J. Zhang, L. Zhao, J. Gao, H. He, P. Dramou, J. Pharm. Biomed. Anal. 2023, 235, 115659.

[121]

R. T. Glatz, H. C. Ates, H. Mohsenin, W. Weber, C. Dincer, Anal. Bioanal. Chem. 2022, 414, 6531.

[122]

N. Seddaoui, N. Colozza, L. Gullo, F. Arduini, Int. J. Biol. Macromol. 2023, 253, 127409.

[123]

L. Cenci, E. Andreetto, A. Vestri, M. Bovi, M. Barozzi, E. Iacob, M. Busato, A. Castagna, D. Girelli, A. M. Bossi, J. Nanobiotechnology 2015, 13, 51.

[124]

Ö. Erdem, I. , Y. Saylan, M. Atabay, M. A. Gungen, K. Ölmez, A. Denizli, F. Inci, Nat. Commun. 2023, 14, 4840.

[125]

P. K. Sonkar, A. Jaiswal, R. Kumar, A. K. Maurya, Narvadeshwar, A. K. Verma, in Molecularly Imprinted Polymers (MIPs), Elsevier 2023, pp. 115–127.

[126]

N. F. Suhaimi, S. N. A. Baharin, N. A. Jamion, Z. Mohd Zain, K. P. Sambasevam, Microchem. J. 2023, 188, 108502.

[127]

J. Chuiprasert, S. Srinives, N. Boontanon, C. Polprasert, N. Ramungul, N. Lertthanaphol, A. Karawek, S. K. Boontanon, ACS Omega 2023, 8, 2564.

[128]

M. Drobysh, A. Ramanavicius, A. Baradoke, Sci. Total Environ. 2023, 862, 160700.

[129]

V. Ratautaite, R. Boguzaite, E. Brazys, D. Plausinaitis, S. Ramanavicius, U. Samukaite-Bubniene, M. Bechelany, A. Ramanavicius, Talanta 2023, 253, 123981.

[130]

V. Liustrovaite, M. Pogorielov, R. Boguzaite, V. Ratautaite, A. Ramanaviciene, G. Pilvenyte, V. Holubnycha, V. Korniienko, K. Diedkova, R. Viter, A. Ramanavicius, Polym. 2023, 15, 1597.

[131]

B. Sun, W. Sun, Z. Wang, B. Zhao, S. Yang, Carbon Lett. 2024, 34, 437.

[132]

T. Di Giulio, A. Barca, T. Verri, M. De Gennaro, G. Giancane, E. Mazzotta, C. Malitesta, Sens. Actuators B Chem. 2023, 383, 133589.

[133]

D. Udomsap, C. Branger, G. Culioli, P. Dollet, H. Brisset, Chem. Commun. 2014, 50, 7488.

[134]

D. Udomsap, H. Brisset, G. Culioli, P. Dollet, K. Laatikainen, H. Siren, C. Branger, Mater. Today Commun. 2018, 17, 458.

[135]

F. Truta, A. Garcia Cruz, M. Tertis, C. Zaleski, G. Adamu, N. S. Allcock, M. Suciu, M.-G. Ştefan, B. Kiss, E. Piletska, K. De Wael, S. A. Piletsky, C. Cristea, Microchem. J. 2023, 191, 108821.

[136]

F. M. Truta, A. G. Cruz, A. Dragan, M. Tertis, T. Cowen, M. Stefan, T. Topala, A. Slosse, E. Piletska, F. Van Durme, B. Kiss, K. De Wael, S. A. Piletsky, C. Cristea, Drug Test. Anal. 2024, 16, 865.

[137]

M. Costa, S. Di Masi, C. Zaleski, S. A. Piletsky, C. Malitesta, in IECB 2023, MDPI, Basel Switzerland 2023, p. 22. Preliminary Studies on the Synthesis of Redox-Labelled Molecularly Imprinted Nanoparticles in Sensor Development for the Quantification of Perfluoroalkyls in Water.

[138]

P. Lach, A. Garcia-Cruz, F. Canfarotta, A. Groves, J. Kalecki, D. Korol, P. Borowicz, K. Nikiforow, M. Cieplak, W. Kutner, S. A. Piletsky, P. S. Sharma, Biosens. Bioelectron. 2023, 236, 115381.

[139]

A. Goyal, T. Sakata, ACS Omega 2022, 7, 33491.

[140]

D. H. Lee, W.-Y. Lee, J. Kim, J. Am. Chem. Soc. 2023, 145, 17767.

[141]

A. N. Stephen, S. R. Dennison, M. A. Holden, S. M. Reddy, Analyst 2023, 148, 5476.

[142]

P. Sunon, K. Ngamchuea, Microchim. Acta 2023, 190, 348.

[143]

N. Indah Wardani, P. Kanatharana, P. Thavarungkul, W. Limbut, Talanta 2023, 265, 124769.

[144]

S. M. Mugo, S. V. Robertson, W. Lu, Anal. Chim. Acta 2023, 1278, 341714.

[145]

F. Beigmoradi, M. Rohani Moghadam, Z. Garkani-Nejad, A. Bazmandegan-Shamili, H. R. Masoodi, Anal. Methods 2023, 15, 5027.

[146]

A. Lusina, M. Cegłowski, Polym. 2022, 14, 640.

[147]

C. Wang, A. Javadi, M. Ghaffari, S. Gong, Biomaterials 2010, 31, 4944.

[148]

J. Pan, B. Wang, J. Dai, X. Dai, H. Hang, H. Ou, Y. Yan, J. Mater. Chem. 2012, 22, 3360.

[149]

L. Xu, L. Qiu, Y. Sheng, Y. Sun, L. Deng, X. Li, M. Bradley, R. Zhang, J. Mater. Chem. B 2018, 6, 510.

[150]

L. Xu, J. Pan, J. Dai, X. Li, H. Hang, Z. Cao, Y. Yan, J. Hazard Mater. 2012, 233–234, 48.

[151]

Z. Hua, Z. Chen, Y. Li, M. Zhao, Langmuir 2008, 24, 5773.

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