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Green sample preparation methods for analysis by liquid chromatography
Języki publikacji
Abstrakty
In the context of green chemistry, modern sample preparation methods in liquid chromatography play a key role in minimizing environmental impact, reducing solvent consumption and reducing analysis time and costs. Analytical procedures related to sample preparation are an important step, both in terms of time consumption and the possibility of errors or contamination. One of the important trends in green methods is the use of direct chromatographic techniques, which eliminate the need to use solvents and other materials. Despite their benefits, there is a challenge in analyzing complex samples. In order to minimize these challenges, the focus was on miniaturization and automation of sample preparation processes. Techniques such as solid-phase extraction are gaining popularity, enabling efficient separation of analytes. Progress in the field of solid-phase microextraction and other modern techniques, such as extraction using a mobile sorption element or hollow fiber liquid phase microextraction, enable precise analysis while minimizing the consumption of solvents. The field of sample preparation is also being revolutionized by alternative solvents such as ionic liquids, supercritical fluids and deep eutectic solvents. Another important aspect is techniques that accelerate the extraction process, such as extraction assisted by microwave radiation and ultrasounds. Green sample preparation methods in liquid chromatography are moving towards a sustainable and efficient approach, using innovative techniques, minimizing solvent consumption and increasing automation. These advances are crucial to achieving green chemistry goals, reducing the ecological footprint and speeding up analytical processes.
Wydawca
Czasopismo
Rocznik
Tom
Strony
1537--1563
Opis fizyczny
Bibliogr. 80 poz., rys., tab., wykr.
Twórcy
autor
- Katedra Chemii Środowiska i Bioanalityki, Wydział Chemii Uniwersytet Mikołaja Kopernika w Toruniu ul. Gagarina 7, 87-100
autor
- Katedra Chemii Analitycznej, Wydział Chemiczny i Centrum Eko-Tech, Politechnika Gdańska, ul. Narutowicza 11/12, 80-233 Gdańsk
autor
- Katedra Chemii Środowiska i Bioanalityki, Wydział Chemii Uniwersytet Mikołaja Kopernika w Toruniu ul. Gagarina 7, 87-100
Bibliografia
- [1] M. Dhoru, K. Shah, K. Detholia, M. Patel, Int. J. Pharm. Sci. Res., 2020, 11, 1022.
- [2] E. Gionfriddo, Physical Sciences Reviews, 2020, 5, 1.
- [3] M. Dembek, S. Bocian, Wiadomości Chemiczne, 2020, 74, 89.
- [4] S. Armenta, S. Garrigues, M. De la Guardia, F.A. Esteve-Turrillas, Encyclopedia of Analytical Science. Elsevier Inc., Hiszpania 2019.
- [5] S. Armenta, M. de la Guardia, TrAC - Trends in Analytical Chemistry, 2016, 80, 517.
- [6] C.M. Hussain, J. Hernández-Borges, Green Sample Preparation Techniques: Concepts, Novel Materials Solvents, and Applications. The Royal Society of Chemistry, 2023.
- [7] A.A. Aly, T. Górecki, Molecules, 2020, 25, 1.
- [8] M.A. Korany, H. Mahgoub, R.S. Haggag, M.A.A. Ragab, O.A. Elmallah, J. Liq. Chromatogr. Relat. Technol., 2017, 40, 839.
- [9] J.S. Câmara, R. Perestrelo, C. V. Berenguer, C.F. Andrade, T.M. Gomez, Molecules, 2022, 27, 2953.
- [10] J. Płotka-Wasylka, M. Fabjanowicz, K. Kalinowska, J. Namieśnik, Green Analytical Chemistry: Past, Present and Perspectives. Springer, Singapur 2019.
- [11] W. Wojnowski, M. Tobiszewski, F. Pena-Pereira, E. Psillakis, TrAC - Trends in Analytical Chemistry, 2022, 149, 116553.
- [12] R. González-Martín, A. Gutiérrez-Serpa, V. Pino, M. Sajid, J. Chromatogr. A, 2023, 1707.
- [13] P.M. Nowak, A. Bis, A. Zima, Green Analytical Chemistry, 2023, 6.
- [14] J. Płotka-Wasylka, Talanta, 2018, 181, 204.
- [15] F. Pena-Pereira, W. Wojnowski, M. Tobiszewski, Anal. Chem., 2020, 92, 10076.
- [16] V. Camel, Spectrochimica Acta - Part B, 2003, 58, 1177.
- [17] J. Kula, Food Chemistry and Biotechnology, 2008, 72, 5.
- [18] S. Risticevic, V.H. Niri, D. Vuckovic, J. Pawliszyn, Anal. Bioanal. Chem., 2009, 393, 781.
- [19] K. Jagodzińska, A. Feliczak-Guzik, I. Nowak, Chemik, 2011, 65, 88.
- [20] J. Płotka-Wasylka, M. Fabjanowicz, K. Kalinowska, J. Namieśnik, Green Analytical Chemistry: Past, Present and Perspectives. Springer, 2019.
- [21] M. Abdel-Rehim, Anal. Chim. Acta, 2011, 701, 119.
- [22] N. Ochiai, K. Sasamoto, F. David, P. Sandra, J. Agric. Food Chem., 2018, 66, 7249.
- [23] U. Telgheder, N. Bader, N. Alshelmani, Asian Journal of Nanoscience and Materials, 2018, 1, 56.
- [24] B. Demirhan, H.E.Ş. Kara, B.E. Demirhan, Ideas and Applications Toward Sample Preparation for Food and Beverage Analysis. IntechOpen, Milton Keynes 2016.
- [25] J.S. Câmara, R. Perestrelo, B. Olayanju, C. V. Berenguer, A. Kabir, Processes, 2022, 10, 1347.
- [26] K. Belay, J. Biol., 2016, 6, 13.
- [27] C. Nerin, Scientia Chromatographica, 2016, 8, 137.
- [28] K. Kocot, Mikroekstrakcja w zatężaniu i oznaczaniu śladowych ilości pierwiastków technikami rentgenowskiej spektrometrii fluorescencyjnej. Praca doktorska. Uniwersytet Śląski, Katowice 2015.
- [29] E. Carasek, J. Merib, Anal. Chim. Acta, 2015, 880, 8.
- [30] N. Migowska, J. Kumirska, Camera Separatoria, 2012, 4, 37.
- [31] J. Płotka, M. Tobiszewski, A.M. Sulej, M. Kupska, T. Górecki, J. Chromatogr. A, 2013, 1307, 1.
- [32] W.A. Khan, M.B. Arain, Y. Yamini, N. Shah, T.G. Kazi, J. Pharm. Anal., 2020, 10, 109.
- [33] S. Dugheri, N. Mucci, A. Bonari, G. Marrubini, G. Cappelli, Acta Chromatogr., 2020, 32, 69.
- [34] K. Kuosmanen, M. Lehmusjärvi, T. Hyötyläinen, M. Jussila, M.L. Riekkola, J. Sep. Sci., 2003, 26, 893.
- [35] M. Sajid, J. Płotka-Wasylka, TrAC - Trends in Analytical Chemistry, 2018, 103, 74.
- [36] O. Kalisz, A. Jaworska, S. Studzińska, S. Bocian, Foods, 2024, 13, 1189.
- [37] S. Studzińska, S. Bocian, P. Stypczyńska, A. Wolan, Foods, 2023, 12, 3675.
- [38] B.J.G. Silva, F.M. Lanças, M.E.C. Queiroz, J. Chromatogr. B Analyt. Technol. Biomed. Life. Sci., 2008, 862, 181.
- [39] J. Kovačić, M.L. Jeličić, D. Amidžić Klarić, A. Mornar, Separations, 2023, 10, 69.
- [40] M. Noori, Z. Talebpour, Sci. Rep., 2024, 14.
- [41] M. Pourhossein, M. Khadem, F. Omidi, R. Heravizadeh, S. Jamaleddin Shahtaheri, Iran J. Public Health, 2023, 52, 2440.
- [42] R. Oliveira Martins, G.G. Souza, L. Santos Machado, G. Lopes De Araújo, R.C. Simas, B.J. Gonçalves, D. Silva, V. Damin, A. Rodrigues, Microchemical Journal, 2023, 193, 109028.
- [43] A.O. Hay, F.A. Hansen, E. Psillakis, S. Pedersen-Bjergaard, Green Analytical Chemistry, 2022, 3.
- [44] I. Pacheco-Fernández, V. Pino, J.H. Ayala, A.M. Afonso, J. Chromatogr. A, 2018, 1559, 102.
- [45] Y. fang Zhang, X. jun Zheng, J. Tian, S. Hu, X. hong Bai, X. Chen, J. Chromatogr. A, 2021, 1643.
- [46] M. Faraji, M. Mahmoodi-Maymand, F. Dastmalchi, Food Chem., 2020, 320.
- [47] M. Vinatoru, T.J. Mason, I. Calinescu, TrAC - Trends in Analytical Chemistry, 2017, 97, 159.
- [48] T.M. Lipińska, LAB - Laboratoria, Aparatura, Badania, 2013, 18, 6.
- [49] J. Wilga, Opracowanie metodyk oznaczania zawartości substancji farmaceutycznych w próbkach środowiskowych. Praca doktorska. Politechnika Gdańska, Gdańsk 2008.
- [50] D. Cerdá-Bernad, J.P. Baixinho, N. Fernández, M.J. Frutos, Foods, 2022, 11, 2335.
- [51] A. Carreira-Casais, P. Otero, P. Garcia-Perez, P. Garcia-Oliveira, A.G. Pereira, Int. J. Environ. Res. Public Health, 2021, 18, 9153.
- [52] T. Bosiljkov, F. Dujmić, M. Cvjetko Bubalo, J. Hribar, R. Vidrih, M. Brnčić, E. Zlatic, I. Radojčić Redovniković, S. Jokić, Food and Bioproducts Processing, 2017, 102, 195.
- [53] A. Haghighi, M. Khajenoori, Mass Transfer - Advances in Sustainable Energy and Environment Oriented Numerical Modeling, IntechOpen, 2013, 460.
- [54] H. Fraguela-Meissimilly, J.M. Bastías-Monte, C. Vergara, J. Ortiz-Viedma, R. Lemus-Mondaca, Molecules, 2023, 28, 4421.
- [55] P.A. Uwineza, A. Waśkiewicz, Molecules, 2020, 25, 3847.
- [56] G.N. Sapkale, S.M. Patil, U.S. Surwase, P.K. Bhatbhage, Int. J. Chem. Sci., 2010, 8, 729.
- [57] S. Atwi-Ghaddar, L. Zerwette, E. Destandau, E. Lesellier, Molecules, 2023, 28, 7060.
- [58] Y. Cheng, F. Xue, S. Yu, S. Du, Y. Yang, Molecules, 2021, 26, 4004.
- [59] M. Dembek, S. Bocian, TrAC - Trends in Analytical Chemistry, 2020, 123.
- [60] M.J. Ko, H.H. Nam, M.S. Chung, Sci. Rep., 2020, 10, 1.
- [61] M.J. Ko, C.I. Cheigh, M.S. Chung, J. Agric. Food Chem., 2014, 62, 6828.
- [62] F.A. Esteve-Turrillas, S. Garrigues, M. de la Guardia, TrAC - Trends in Analytical Chemistry, 2024, 170, 117464.
- [63] J.S. Câmara, R. Perestrelo, C. V. Berenguer, C.F. Andrade, T.M. Gomez, Molecules, 2022, 27, 2953.
- [64] J. Płotka-Wasylka, N. Szczepańska, M. de la Guardia, J. Namieśnik, TrAC - Trends in Analytical Chemistry, 2015, 73, 19.
- [65] A.A. Aly, T. Górecki, Molecules, 2020, 25, 1.
- [66] L.M. Rosendo, A.T. Brinca, B. Pires, G. Catarro, T. Rosado, R.P.F. Guiné, A.R.T.S. Araújo, O. Anjos, E. Gallardo, Processes, 2023, 11.
- [67] G. Castañeta, N. Cifuentes, B. Sepulveda, D. Bárcenas-Pérez, J. Cheel, C. Areche, Separations, 2022, 9, 327.
- [68] M. Pagliaro, A.S. Fabiano-Tixier, R. Ciriminna, Green Chemistry, 2023, 25, 6108.
- [69] M. Fabjanowicz, K. Kalinowska, J. Namieśnik, J. Płotka-Wasylka, Curr. Green Chem., 2018, 5, 168.
- [70] M. Bystrzanowska, M. Tobiszewski, Analityka: Nauka i Praktyka, 2020, 40.
- [71] F.A. Esteve-Turrillas, S. Garrigues, M. de la Guardia, TrAC - Trends in Analytical Chemistry, 2024, 170, 117464.
- [72] Z. Lei, B. Chen, Y.M. Koo, D.R. Macfarlane, Chem. Rev., 2017, 117, 6633.
- [73] S. Marullo, F. D’Anna, C. Rizzo, F. Billeci, Org. Biomol. Chem., 2021, 19, 2076.
- [74] E.L. Smith, A.P. Abbott, K.S. Ryder, Chem. Rev., 2014, 114, 11060.
- [75] C. Caballo, M.D. Sicilia, S. Rubio, The Application of Green Solvents in Separation Processes. Elsevier Inc., 2017.
- [76] A. Ballesteros-Gómez, M.D. Sicilia, S. Rubio, Anal Chim Acta, 2010, 677, 108.
- [77] I. Pacheco-Fernández, V. Pino, Curr. Opin. Green Sustain. Chem., 2019, 18, 42.
- [78] S. Mehdi-alamdarlou, A. Azadi, D. Karbasi, H. Ashrafi, Trends in Pharmaceutical Science, 2023, 9, 71.
- [79] K.A. Altammar, Front. Microbiol., 2023, 14, 1155622.
- [80] B. Han, T. Wu, Encyclopedia of Sustainability Science and Technology. Springer, 2019.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-f9e76961-9f34-4562-88a3-fff3085f1034
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