Selected Total Lipid Analysis Methods from Conventional to Advanced Approaches

Jaclyn Regina Anggara, Muliasari Kartikawati, Jessica Renata Yoewono, Ika Yohanna Pratiwi

Abstract


Lipids are essential components of food, contributing to nutritional quality, physical properties, and sensory characteristics. Therefore, total lipid analysis is crucial in food evaluation. However, the variety of lipid fractions and the intricacy of food matrices necessitate the use of suitable, precise, and effective analytical techniques. A qualitative narrative review of the evolution of total lipid analysis techniques, including traditional, contemporary, and non-destructive procedures, is presented in this article. International open-access research publications from 2016 to 2025 were used to create the literature, which was then compared according to its constraints, performance, efficiency, and guiding principles. Despite their time and consistency restrictions, traditional solvent-based techniques like Goldfisch, Soxhlet, Bligh and Dyer, and Mojonnier are still often employed because of their ease of use. Higher efficiency and selectivity are provided by contemporary techniques like Supercritical Fluid Extraction (SFE), Microwave-Assisted Extraction (MAE), and Pressurized Liquid Extraction (PLE), while Near-Infrared Spectroscopy (NIRS) has become a quick and effective non-destructive substitute. This review emphasises the importance of integrating conventional and modern methods in total lipid analysis according to the analysis objectives and characteristics of the food matrix.


References


Afseth, N. K., Dankel, K., Andersen, P. V., Difford, G. F., Horn, S. S., Sonesson, A., … Tengstrand, E. (2022). Raman and near Infrared Spectroscopy for Quantification of Fatty Acids in Muscle Tissue—A Salmon Case Study. Foods, 11(7), 962. doi:10.3390/foods11070962

Agarwalla, A., Komandur, J., & Mohanty, K. (2023). Current trends in the pretreatment of microalgal biomass for efficient and enhanced bioenergy production. Bioresource Technology, 369, 128330. doi:10.1016/j.biortech.2022.128330

Ahmad, R., Liaquat, M., Sammi, S., Al-Hawadi, J. S., Jahangir, M., Mumtaz, A., … Fahad, S. (2024). Physicochemical and nutritional profiles of wild adlay (Coix lacryma-jobi Linn) accessions by GC, FTIR, and spectrophotometer. Food Chemistry: X, 22(22), 101418. doi:10.1016/j.fochx.2024.101418

Akondi, R. N., Trexler, R. V., Pfiffner, S. M., Mouser, P. J., & Sharma, S. (2017). Modified Lipid Extraction Methods for Deep Subsurface Shale. Frontiers in Microbiology, 8. doi:10.3389/fmicb.2017.01408

Alwazeer, D., Elnasanelkasim, M. A., Çi̇çek, S., Engin, T., Çiğdem, A., & Karaoğul, E. (2023). Comparative study of phytochemical extraction using hydrogen-rich water and supercritical fluid extraction methods. Process Biochemistry, 128, 218–226. doi:10.1016/j.procbio.2023.01.022

Armenta, S., Esteve-Turrillas, F. A., Garrigues, S., & de la Guardia, M. (2022). Alternative green solvents in sample preparation. Green Analytical Chemistry, 1, 100007. doi:10.1016/j.greeac.2022.100007

Beć, K. B., Grabska, J., & Huck, C. W. (2021). Principles and Applications of Miniaturized Near‐Infrared (NIR) Spectrometers. Chemistry – A European Journal, 27(5), 1514–1532. doi:10.1002/chem.202002838

Blanco-Llamero, C., & Señoráns, F. J. (2021). Biobased Solvents for Pressurized Liquid Extraction of Nannochloropsis gaditana Omega-3 Lipids. Marine Drugs, 19(2), 107. doi:10.3390/md19020107

Breil, C., Abert Vian, M., Zemb, T., Kunz, W., & Chemat, F. (2017). “Bligh and Dyer” and Folch Methods for Solid–Liquid–Liquid Extraction of Lipids from Microorganisms. Comprehension of Solvatation Mechanisms and towards Substitution with Alternative Solvents. International Journal of Molecular Sciences, 18(4), 708. doi:10.3390/ijms18040708

Cazzaniga, E., Cavallini, N., Giraudo, A., Gavoci, G., Geobaldo, F., Pariani, M., … Savorani, F. (2022). Lipids in a Nutshell: Quick Determination of Lipid Content in Hazelnuts with NIR Spectroscopy. Foods, 12(1), 34. doi:10.3390/foods12010034

Cebi, N., Bekiroglu, H., & Erarslan, A. (2023). Nondestructive Metabolomic Fingerprinting: FTIR, NIR and Raman Spectroscopy in Food Screening. Molecules, 28(23), 7933. doi:10.3390/molecules28237933

Chatzimitakos, T., Athanasiadis, V., Kotsou, K., Mantiniotou, M., Kalompatsios, D., Makrygiannis, I., … Lalas, S. I. (2024). Optimization of Pressurized Liquid Extraction (PLE) Parameters for Extraction of Bioactive Compounds from Moringa oleifera Leaves and Bioactivity Assessment. International Journal of Molecular Sciences, 25(9), 4628. doi:10.3390/ijms25094628

Chauca-Cerrutti, A., Inga, M., Pasquel-Reátegui, J. L., Betalleluz-Pallardel, I., & Puma-Isuiza, G. (2024). Optimization of extraction in supercritical fluids in obtaining Pouteria lucuma seed oil by response surface methodology and artificial neuronal network coupled with a genetic algorithm. Frontiers in Chemistry, 12. doi:10.3389/fchem.2024.1491479

Chen, B., & Ellefson, W. C. (2024). Fat Analysis (pp. 273–286). Cham: Springer International Publishing. doi:10.1007/978-3-031-50643-7_17

Chen, Q., Lin, H., & Zhao, J. (2021). Advanced Nondestructive Detection Technologies in Food. Singapore: Advanced Nondestructive Detection Technologies in Food. doi:10.1007/978-981-16-3360-7

Circelli, L., Cheng, Z., Garwood, E., Yuksel, K., Di Iorio, E., Angelico, R., & Colombo, C. (2024). Comparison of ATR-FTIR and NIR spectroscopy for identification of microplastics in biosolids. Science of The Total Environment, 916, 170215. doi:10.1016/j.scitotenv.2024.170215

da Silva Medeiros, M. L., Cruz-Tirado, J. P., Lima, A. F., de Souza Netto, J. M., Ribeiro, A. P. B., Bassegio, D., … Barbin, D. F. (2022). Assessment oil composition and species discrimination of Brassicas seeds based on hyperspectral imaging and portable near infrared (NIR) spectroscopy tools and chemometrics. Journal of Food Composition and Analysis, 107, 104403. doi:10.1016/j.jfca.2022.104403

de Faria, D. C., de Queiroz, M. E. L. R., & Novaes, F. J. M. (2025). Direct Hot Solid–Liquid Extraction (DH-SLE): A High-Yield Greener Technique for Lipid Recovery from Coffee Beans. Plants, 14(2), 185. doi:10.3390/plants14020185

de la Fuente, B., Pinela, J., Mandim, F., Heleno, S. A., Ferreira, I. C. F. R., Barba, F. J., … Barros, L. (2022). Nutritional and bioactive oils from salmon (Salmo salar) side streams obtained by Soxhlet and optimized microwave-assisted extraction. Food Chemistry, 386, 132778. doi:10.1016/j.foodchem.2022.132778

de Souza Mesquita, L. M., Contieri, L. S., Sosa, F. H. B., Pizani, R. S., Chaves, J., Viganó, J., … Rostagno, M. A. (2023). Combining eutectic solvents and pressurized liquid extraction coupled in-line with solid-phase extraction to recover, purify and stabilize anthocyanins from Brazilian berry waste. Green Chemistry, 25(5), 1884–1897. doi:10.1039/D2GC04347E

Dimić, I., Pezo, L., Rakić, D., Teslić, N., Zeković, Z., & Pavlić, B. (2021). Supercritical Fluid Extraction Kinetics of Cherry Seed Oil: Kinetics Modeling and ANN Optimization. Foods, 10(7), 1513. doi:10.3390/foods10071513

Dobroslavić, E., Elez Garofulić, I., Šeparović, J., Zorić, Z., Pedisić, S., & Dragović-Uzelac, V. (2022). Pressurized Liquid Extraction as a Novel Technique for the Isolation of Laurus nobilis L. Leaf Polyphenols. Molecules, 27(16), 5099. doi:10.3390/molecules27165099

Esonye, C., Onukwuli, O. D., Anadebe, V. C., Ezeugo, J. N. O., & Ogbodo, N. J. (2021). Application of soft-computing techniques for statistical modeling and optimization of Dyacrodes edulis seed oil extraction using polar and non-polar solvents. Heliyon, 7(3), e06342. doi:10.1016/j.heliyon.2021.e06342

Ezeh, O., Gordon, M. H., & Niranjan, K. (2016). Enhancing the recovery of tiger nut (Cyperus esculentus) oil by mechanical pressing: Moisture content, particle size, high pressure and enzymatic pre-treatment effects. Food Chemistry, 194, 354–361. doi:10.1016/j.foodchem.2015.07.151

Folli, G. S., Santos, L. P., Santos, F. D., Cunha, P. H. P., Schaffel, I. F., Borghi, F. T., … Filgueiras, P. R. (2022). Food analysis by portable NIR spectrometer. Food Chemistry Advances, 1, 100074. doi:10.1016/j.focha.2022.100074

Garcia-Mendoza, M. del P., Espinosa-Pardo, F. A., Savoire, R., Etchegoyen, C., Harscoat-Schiavo, C., & Subra-Paternault, P. (2021). Recovery and antioxidant activity of phenolic compounds extracted from walnut press-cake using various methods and conditions. Industrial Crops and Products, 167, 113546. doi:10.1016/j.indcrop.2021.113546

Gatea, A. H., Alshamkhawy, S. A. A., & Abdul-Hassan, W. S. (2022). Comparison Study of Cloud Point and Solvent Extraction of Copper by 3-Chloro-2,4-pentanedione as Complexing Agent. Journal of Medicinal and Chemical Sciences, 5(5), 743–752.

Heise, H. M., Delbeck, S., & Marbach, R. (2021). Noninvasive Monitoring of Glucose Using Near-Infrared Reflection Spectroscopy of Skin—Constraints and Effective Novel Strategy in Multivariate Calibration. Biosensors, 11(3), 64. doi:10.3390/bios11030064

Hou, N.-C., Gao, H.-H., Qiu, Z.-J., Deng, Y.-H., Zhang, Y.-T., Yang, Z.-C., … Wang, X.-D. (2024). Quality and active constituents of safflower seed oil: A comparison of cold pressing, hot pressing, Soxhlet extraction and subcritical fluid extraction. LWT, 200, 116184. doi:10.1016/j.lwt.2024.116184

Jaradat, E., Weaver, E., Meziane, A., & Lamprou, D. A. (2022). Microfluidic paclitaxel-loaded lipid nanoparticle formulations for chemotherapy. International Journal of Pharmaceutics, 628, 122320. doi:10.1016/j.ijpharm.2022.122320

Kapoore, R., Butler, T., Pandhal, J., & Vaidyanathan, S. (2018). Microwave-Assisted Extraction for Microalgae: From Biofuels to Biorefinery. Biology, 7(1), 18. doi:10.3390/biology7010018

Khalfi, A., Garrigós, M. C., Ramos, M., & Jiménez, A. (2024). Optimization of the Microwave-Assisted Extraction Conditions for Phenolic Compounds from Date Seeds. Foods, 13(23), 3771. doi:10.3390/foods13233771

Khalil, N., Bishr, M., El-Degwy, M., Abdelhady, M., Amin, M., & Salama, O. (2021). Assessment of Conventional Solvent Extraction vs. Supercritical Fluid Extraction of Khella (Ammi visnaga L.) Furanochromones and Their Cytotoxicity. Molecules, 26(5), 1290. doi:10.3390/molecules26051290

Khorramdashti, M. S., Samipoor Giri, M., & Majidian, N. (2021). Extraction lipids from chlorella vulgaris by supercritical CO2 for biodiesel production. South African Journal of Chemical Engineering, 38, 121–131. doi:10.1016/j.sajce.2021.03.008

Khouja, M., Páscoa, R. N. M. J., Melo, D., Costa, A. S. G., Nunes, M. A., Khaldi, A., … Alves, R. C. (2022). Lipid Profile Quantification and Species Discrimination of Pine Seeds through NIR Spectroscopy: A Feasibility Study. Foods, 11(23), 3939. doi:10.3390/foods11233939

Kröncke, N., Wittke, S., Steinmann, N., & Benning, R. (2023). Analysis of the Composition of Different Instars of Tenebrio molitor Larvae using Near-Infrared Reflectance Spectroscopy for Prediction of Amino and Fatty Acid Content. Insects, 14(4), 310. doi:10.3390/insects14040310

Lestari, D., Rohman, A., Syofyan, S., Yuliana, N. D., Abu Bakar, N. K. Bt., & Hamidi, D. (2022). Analysis of beef meatballs with rat meat adulteration using Fourier Transform Infrared (FTIR) spectroscopy in combination with chemometrics. International Journal of Food Properties, 25(1), 1446–1457. doi:10.1080/10942912.2022.2083637

Lim, S., Cha, J.-J., Hong, S. J., Kim, J. H., Joo, H. J., Park, J. H., … Lim, D.-S. (2022). Association between High Lipid Burden of Target Lesion and Slow TIMI Flow in Coronary Interventions. Journal of Clinical Medicine, 11(18), 5401. doi:10.3390/jcm11185401

Lintvedt, T. A., Andersen, P. V., Afseth, N. K., Heia, K., Lindberg, S.-K., & Wold, J. P. (2023). Raman spectroscopy and NIR hyperspectral imaging for in-line estimation of fatty acid features in salmon fillets. Talanta, 254, 124113. doi:10.1016/j.talanta.2022.124113

Lourenço, J. G., Ettlin, D., Cardoso, I. C., & Rodilla, J. M. (2021). Total Fat Gravimetric Method Workflow in Portuguese Olives Using Closed-Vessel Microwave-Assisted Extraction (MAE). Foods, 10(10), 2364. doi:10.3390/foods10102364

Marcheafave, G., Pauli, E., Wendling, I., Rakocevic, M., Scarminio, I., & Bruns, R. (2025). A Comparative Study Using UV-Vis, NIR, and FTIR Spectral Fingerprinting in Yerba Mate Leaves through Mixture Design Extractions and ASCA Models. Journal of the Brazilian Chemical Society. doi:10.21577/0103-5053.20240073

Mishra, P., Nikzad-Langerodi, R., Marini, F., Roger, J. M., Biancolillo, A., Rutledge, D. N., & Lohumi, S. (2021). Are standard sample measurements still needed to transfer multivariate calibration models between near-infrared spectrometers? The answer is not always. TrAC Trends in Analytical Chemistry, 143, 116331. doi:10.1016/j.trac.2021.116331

Mkhize, Z. I., Ngema, P. T., & Ramsuroop, S. (2023). Effect of Temperature on Extraction of Castor Oil from Castor Seeds Using Potential Green Solvents. Advances in Chemical Engineering and Science, 13(04), 301–317. doi:10.4236/aces.2023.134021

Moneeb, A. H. M., Hammam, A. R. A., Ahmed, A. K. A., Ahmed, M. E., & Alsaleem, K. A. (2021). Effect of fat extraction methods on the fatty acids composition of bovine milk using gas chromatography. Food Science & Nutrition, 9(6), 2936–2942. doi:10.1002/fsn3.2252

Nabede, A., Haziz, S., Tiatou, S., Mamatchi, M., Farid, T. B., Adolphe, A., … Kou’santa, A. (2022). Physicochemical parameters of Blighia sapida (K.D. Koenig) oil extracted in Togo. African Journal of Biochemistry Research, 16(4), 63–70. doi:10.5897/AJBR2022.1158

Nebolisa, N. M., Umeyor, C. E., Ekpunobi, U. E., Umeyor, I. C., & Okoye, F. B. (2023). Profiling the effects of microwave-assisted and soxhlet extraction techniques on the physicochemical attributes of Moringa oleifera seed oil and proteins. Oil Crop Science, 8(1), 16–26. doi:10.1016/j.ocsci.2023.02.003

Nielsen, S. P., & Ismail, B. P. (2024). Nielsen’s Food Analysis. In Food Science Text Series (pp. 249–250). Springer. doi:10.1007/978-3-031-44970-3_33

Omeje, K. O., Ezema, B. O., Ozioko, J. N., Omeje, H. C., Ossai, E. C., Eze, S. O. O., … Korzeniowska, M. (2022). Biochemical characterization of Soxhlet-extracted pulp oil of Canarium schweinfurthii Engl. fruit in Nigeria. Scientific Reports, 12(1), 10291. doi:10.1038/s41598-022-14381-w

Perez-Vazquez, A., Barciela, P., Carpena, M., Donn, P., Seyyedi-Mansour, S., Cao, H., … Cassani, L. (2023). Supercritical Fluid Extraction as a Potential Extraction Technique for the Food Industry. In The 2nd International Electronic Conference on Processes: Process Engineering—Current State and Future Trends (p. 115). Basel Switzerland: MDPI. doi:10.3390/ECP2023-14674

Pham, T. N., Lam, T. D., Nguyen, M. T., Le, X. T., Vo, D.-V. N., Toan, T. Q., & Vo, T. S. (2019). Effect of various factors on extraction efficiency of total anthocyanins from Butterfly pea (Clitoria ternatea L. Flowers) in Southern Vietnam. IOP Conference Series: Materials Science and Engineering, 544(1), 012013. doi:10.1088/1757-899X/544/1/012013

Picot-Allain, C., Mahomoodally, M. F., Ak, G., & Zengin, G. (2021). Conventional versus green extraction techniques — a comparative perspective. Current Opinion in Food Science, 40, 144–156. doi:10.1016/j.cofs.2021.02.009

Pinto, J. D. R., Guerrero, J. L., Rivera, L., Parada-Pinilla, M. P., Cala, M. P., López, G., & González Barrios, A. F. (2024). Predicting the microalgae lipid profile obtained by supercritical fluid extraction using a machine learning model. Frontiers in Chemistry, 12. doi:10.3389/fchem.2024.1480887

Radzali, S. A., Markom, M., & Md Saleh, N. (2022). Parameter Effects and Optimisation in Supercritical Fluid Extraction of Phenolic Compounds from Labisia pumila. Separations, 9(12), 385. doi:10.3390/separations9120385

Rajesh, Y., Khan, N. M., Raziq Shaikh, A., Mane, V. S., Daware, G., & Dabhade, G. (2023). Investigation of geranium oil extraction performance by using soxhlet extraction. Materials Today: Proceedings, 72, 2610–2617. doi:10.1016/j.matpr.2022.07.276

Ramírez, C. (2022). Lipids, Chloroform, and Their Intertwined Histories. Substantia, 6(1), 133–143. doi:10.36253/Substantia-1498

Ripoll, G., Failla, S., Panea, B., Hocquette, J.-F., Dunner, S., Olleta, J. L., … Williams, J. L. (2021). Near-Infrared Reflectance Spectroscopy for Predicting the Phospholipid Fraction and the Total Fatty Acid Composition of Freeze-Dried Beef. Sensors, 21(12), 4230. doi:10.3390/s21124230

Rodríguez-España, M., Mendoza-Sánchez, L. G., Magallón-Servín, P., Salgado-Cervantes, M. A., Acosta-Osorio, A. A., & García, H. S. (2022). Supercritical fluid extraction of lipids rich in DHA from Schizochytrium sp. The Journal of Supercritical Fluids, 179, 105391. doi:10.1016/j.supflu.2021.105391

Saifullah, M., McCullum, R., & Vuong, Q. Van. (2021). Optimization of Microwave-Assisted Extraction of Polyphenols from Lemon Myrtle: Comparison of Modern and Conventional Extraction Techniques Based on Bioactivity and Total Polyphenols in Dry Extracts. Processes, 9(12), 2212. doi:10.3390/pr9122212

Samoo, F., Mastoi, G. M., Kandhro, A., Abbasi, A. R., Panhwar, A., Khan, Y., … Kazi, M. A. (2022). Determination of The Heavy Metals and Proximate Analysis from Vegetables In Hyderabad, Sindh. Pakistan Journal of Science (Vol. 74).

Solaberrieta, I., Mellinas, C., Jiménez, A., & Garrigós, M. C. (2022). Recovery of Antioxidants from Tomato Seed Industrial Wastes by Microwave-Assisted and Ultrasound-Assisted Extraction. Foods, 11(19), 3068. doi:10.3390/foods11193068

Soriano, Y., Andreu, V., & Picó, Y. (2024). Pressurized liquid extraction of organic contaminants in environmental and food samples. TrAC Trends in Analytical Chemistry, 173, 117624. doi:10.1016/j.trac.2024.117624

Sprick, B., Linghu, Z., Amamcharla, J. K., Metzger, L. E., & Smith, J. S. (2019). Selective extraction of phospholipids from whey protein phospholipid concentrate using supercritical carbon dioxide and ethanol as a co-solvent. Journal of Dairy Science, 102(12), 10855–10866. doi:10.3168/jds.2019-16419

Sündermann, A., Eggers, L. F., & Schwudke, D. (2016). Liquid Extraction: Bligh and Dyer. In Encyclopedia of Lipidomics (pp. 1–4). Dordrecht: Springer Netherlands. doi:10.1007/978-94-007-7864-1_88-1

Thilakarathna, R. C. N., Madhusankha, G. D. M. P., & Navaratne, S. B. (2022). Potential food applications of sorghum ( Sorghum bicolor ) and rapid screening methods of nutritional traits by spectroscopic platforms. Journal of Food Science, 87(1), 36–51. doi:10.1111/1750-3841.16008

Thy, V. B., Diep, T. N., Dung, N. C., & Dat, H. L. (2022). Antioxidant capacities of the extracts from Perilla frutescens L. leaves using pressurized liquid extraction and conventional techniques. Vietnam Journal of Biotechnology, 20(1), 73–80. doi:10.15625/1811-4989/15682

Toribio, L., Bernal, J., Martín, M. T., & Ares, A. M. (2021). Supercritical fluid chromatography coupled to mass spectrometry: A valuable tool in food analysis. TrAC Trends in Analytical Chemistry, 143, 116350. doi:10.1016/j.trac.2021.116350

Torres-Rodriguez, A., Darvishzadeh, R., Skidmore, A. K., Fränzel-Luiten, E., Knaken, B., & Schuur, B. (2024). High-throughput Soxhlet extraction method applied for analysis of leaf lignocellulose and non-structural substances. MethodsX, 12, 102644. doi:10.1016/j.mex.2024.102644

Trolles-Cavalcante, S. Y. T., Dutta, A., Sofer, Z., & Borenstein, A. (2021). The effectiveness of Soxhlet extraction as a simple method for GO rinsing as a precursor of high-quality graphene. Nanoscale Advances, 3(18), 5292–5300. doi:10.1039/D1NA00382H

Tsegay, G., Ammare, Y., & Mesfin, S. (2023). Development of non-destructive NIRS models to predict oil and major fatty acid contents of Ethiopian sesame. Journal of Food Composition and Analysis, 115, 104908. doi:10.1016/j.jfca.2022.104908

Tyasna, P. S., Agustin, A. E., Maharani, D., Utami, M. R., & Nurfadhilah, L. (2022). Identification Of Carbohydrate, Protein And Fat Levels In Flour, Cheese, Milk And Yoghurt Through Several Test Methods. Jurnal Eduhealth, 13(02), 2022. Retrieved from http://ejournal.seaninstitute.or.id/index.php/healt

Vasconcelos, B., Teixeira, J. C., Dragone, G., & Teixeira, J. A. (2018). Optimization of lipid extraction from the oleaginous yeasts Rhodotorula glutinis and Lipomyces kononenkoae. AMB Express, 8(1), 126. doi:10.1186/s13568-018-0658-4

Wicker, R. J., Kumar, G., Khan, E., & Bhatnagar, A. (2021). Emergent green technologies for cost-effective valorization of microalgal biomass to renewable fuel products under a biorefinery scheme. Chemical Engineering Journal, 415, 128932. doi:10.1016/j.cej.2021.128932

Zaini, A. S., Putra, N. R., Idham, Z., Mohd Faizal, A. N., Che Yunus, M. A., Mamat, H., & Abdul Aziz, A. H. (2022). Comparison of Alliin Recovery from Allium sativum L. Using Soxhlet Extraction and Subcritical Water Extraction. ChemEngineering, 6(5), 73. doi:10.3390/chemengineering6050073

Zhou, J., Wang, M., Carrillo, C., Zhu, Z., Brncic, M., Berrada, H., & Barba, F. J. (2021). Impact of Pressurized Liquid Extraction and pH on Protein Yield, Changes in Molecular Size Distribution and Antioxidant Compounds Recovery from Spirulina. Foods, 10(9), 2153. doi:10.3390/foods10092153

Zhou, J., Wang, M., Saraiva, J. A., Martins, A. P., Pinto, C. A., Prieto, M. A., … Barba, F. J. (2022). Extraction of lipids from microalgae using classical and innovative approaches. Food Chemistry, 384, 132236. doi:10.1016/j.foodchem.2022.132236


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DOI : https://doi.org/10.33005/jtp.v20i1.5667

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