[1]

Ebert AW. 2020. The role of vegetable genetic resources in nutrition security and vegetable breeding. Plants 9:736

doi: 10.3390/plants9060736
[2]

Knez E, Kadac-Czapska K, Dmochowska-Ślęzak K, Grembecka M. 2022. Root vegetables—composition, health effects, and contaminants. International Journal of Environmental Research and Public Health 19:15531

doi: 10.3390/ijerph192315531
[3]

Chaudhari VM, Singh OB, Gouthami NS, Thakur N, Singh R, et al. 2024. Unlocking the nutritional power of vegetables: a guide to vibrant health. European Journal of Nutrition & Food Safety 16:247−61

doi: 10.9734/ejnfs/2024/v16i81512
[4]

Jiang Q, Zhang M, Xu B. 2020. Application of ultrasonic technology in postharvested fruits and vegetables storage: a review. Ultrasonics Sonochemistry 69:105261

doi: 10.1016/j.ultsonch.2020.105261
[5]

Tango CN, Khan I, Ngnitcho Kounkeu PF, Momna R, Hussain MS, et al. 2017. Slightly acidic electrolyzed water combined with chemical and physical treatments to decontaminate bacteria on fresh fruits. Food Microbiology 67:97−105

doi: 10.1016/j.fm.2017.06.007
[6]

Roobab U, Aadil RM, Madni GM, Bekhit AE. 2018. The impact of nonthermal technologies on the microbiological quality of juices: a review. Comprehensive Reviews in Food Science and Food Safety 17:437−57

doi: 10.1111/1541-4337.12336
[7]

Pelissari EMR, Covre KV, do Rosario DKA, de São José JFB. 2021. Application of chemometrics to assess the influence of ultrasound and chemical sanitizers on vegetables: impact on natural microbiota, Salmonella Enteritidis and physicochemical nutritional quality. LWT 148:111711

doi: 10.1016/j.lwt.2021.111711
[8]

Liu J, Bi J, McClements DJ, Liu X, Yi J, et al. 2020. Impacts of thermal and non-thermal processing on structure and functionality of pectin in fruit- and vegetable-based products: a review. Carbohydrate Polymers 250:116890

doi: 10.1016/j.carbpol.2020.116890
[9]

Pathania N, Dubey PK. 2025. A review on high-frequency sound waves and nutrients: influence of ultra-sonication on nutritional aspect of fruit juice blends. International Journal of Food Science and Technology 60:vvae086

doi: 10.1093/ijfood/vvae086
[10]

Dubey PK, Kumar KS, Rawson A, Anandakumar S, Baskaran N, et al. 2023. Effect of pulsed electric field on physicochemical properties of rice and black gram fermented batter. Journal of Food Process Engineering 46:e14411

doi: 10.1111/jfpe.14411
[11]

Zadeike D, Degutyte R. 2023. Recent advances in acoustic technology in food processing. Foods 12:3365

doi: 10.3390/foods12183365
[12]

Naliyadhara N, Kumar A, Girisa S, Daimary UD, Hegde M, et al. 2022. Pulsed electric field (PEF): avant-garde extraction escalation technology in food industry. Trends in Food Science & Technology 122:238−55

doi: 10.1016/j.jpgs.2022.02.019
[13]

Soltani Firouz M, Farahmandi A, Hosseinpour S. 2019. Recent advances in ultrasound application as a novel technique in analysis, processing and quality control of fruits, juices and dairy products industries: a review. Ultrasonics Sonochemistry 57:73−88

doi: 10.1016/j.ultsonch.2019.05.014
[14]

Gallo M, Ferrara L, Naviglio D. 2018. Application of ultrasound in food science and technology: a perspective. Foods 7:164

doi: 10.3390/foods7100164
[15]

Zhou S, Chen W, Chitrakar B, Fan K. 2024. Ultrasound technology for enhancing drying efficiency and quality of fruits and vegetables: a review. Food and Bioprocess Technology 17:4506−36

doi: 10.1007/s11947-024-03379-z
[16]

Ali M, Liao L, Zeng XA, Manzoor MF, Mazahir M. 2024. Impact of sustainable emerging pulsed electric field processing on textural properties of food products and their mechanisms: an updated review. Journal of Agriculture and Food Research 15:101076

doi: 10.1016/j.jafr.2024.101076
[17]

Vanga SK, Wang J, Orsat V, Raghavan V. 2020. Effect of pulsed ultrasound, a green food processing technique, on the secondary structure and in-vitro digestibility of almond milk protein. Food Research International 137:109523

doi: 10.1016/j.foodres.2020.109523
[18]

Wang J, Wang J, Vanga SK, Raghavan V. 2020. High-intensity ultrasound processing of kiwifruit juice: effects on the microstructure, pectin, carbohydrates and rheological properties. Food Chemistry 313:126121

doi: 10.1016/j.foodchem.2019.126121
[19]

Dong X, Wang J, Raghavan V. 2020. Effects of high-intensity ultrasound processing on the physiochemical and allergenic properties of shrimp. Innovative Food Science & Emerging Technologies 65:102441

doi: 10.1016/j.ifset.2020.102441
[20]

Chavan P, Sharma P, Sharma SR, Mittal TC, Jaiswal AK. 2022. Application of high-intensity ultrasound to improve food processing efficiency: a review. Foods 11:122

doi: 10.3390/foods11010122
[21]

Bhat ZF, Morton JD, Bekhit AEA, Kumar S, Bhat HF. 2021. Emerging processing technologies for improved digestibility of muscle proteins. Trends in Food Science & Technology 110:226−39

doi: 10.1016/j.jpgs.2021.02.010
[22]

Agi A, Junin R, Jaafar MZ, Sidek MA, Yakasai F, et al. 2022. Laboratory evaluation to field application of ultrasound: a state-of-the-art review on the effect of ultrasonication on enhanced oil recovery mechanisms. Journal of Industrial and Engineering Chemistry 110:100−19

doi: 10.1016/j.jiec.2022.03.030
[23]

Xing G, Wilkens V, Yang P. 2021. Review of field characterization techniques for high intensity therapeutic ultrasound. Metrologia 58:022001

doi: 10.1088/1681-7575/abe02e
[24]

Bhat ZF, Morton JD, Kumar S, Bhat HF, Aadil RM, et al. 2022. Ultrasonication as an emerging technology for processing of animal derived foods: a focus on in vitro protein digestibility. Trends in Food Science & Technology 124:309−22

doi: 10.1016/j.jpgs.2022.04.012
[25]

Fernandes FAN, Rodrigues S. 2023. Ultrasound applications in drying of fruits from a sustainable development goals perspective. Ultrasonics Sonochemistry 96:106430

doi: 10.1016/j.ultsonch.2023.106430
[26]

Raza H, Ameer K, Ren X, Liang Q, Chen X, et al. 2021. Physicochemical properties and digestion mechanism of starch-linoleic acid complex induced by multi-frequency power ultrasound. Food Chemistry 364:130392

doi: 10.1016/j.foodchem.2021.130392
[27]

Xu B, Sylvain Tiliwa E, Yan W, Roknul Azam SM, Wei B, et al. 2022. Recent development in high quality drying of fruits and vegetables assisted by ultrasound: a review. Food Research International 152:110744

doi: 10.1016/j.foodres.2021.110744
[28]

Mittelstein DR. 2020. Modifying ultrasound waveform parameters to control, influence, or disrupt cells. Thesis. California Institute of Technology, Pasadena, California. 104 pp. doi: 10.7907/71ak-w328

[29]

Bhargava N, Mor RS, Kumar K, Sharanagat VS. 2021. Advances in application of ultrasound in food processing: a review. Ultrasonics Sonochemistry 70:105293

doi: 10.1016/j.ultsonch.2020.105293
[30]

Tehrani Fateh S, Moradi L, Kohan E, Hamblin MR, Shiralizadeh Dezfuli A. 2021. Comprehensive review on ultrasound-responsive theranostic nanomaterials: mechanisms, structures and medical applications. Beilstein Journal of Nanotechnology 12:808−62

doi: 10.3762/bjnano.12.64
[31]

Nowacka M, Dadan M, Tylewicz U. 2021. Current applications of ultrasound in fruit and vegetables osmotic dehydration processes. Applied Sciences 11:1269

doi: 10.3390/app11031269
[32]

Ammelt D, Lammerskitten A, Wiktor A, Barba FJ, Toepfl S, et al. 2021. The impact of pulsed electric fields on quality parameters of freeze-dried red beets and pineapples. International Journal of Food Science and Technology 56:1777−87

doi: 10.1111/ijfs.14803
[33]

Hill K, Ostermeier R, Töpfl S, Heinz V. 2022. Pulsed electric fields in the potato industry. In Pulsed Electric Fields Technology for the Food Industry: Fundamentals and Applications, eds. Raso J, Heinz V, Alvarez I, Toepfl S. Cham: Springer International Publishing. pp. 325–35. doi: 10.1007/978-3-030-70586-2_9

[34]

Shorstkii I, Sosnin M, Smetana S, Toepfl S, Parniakov O, et al. 2022. Correlation of the cell disintegration index with Luikov’s heat and mass transfer parameters for drying of pulsed electric field (PEF) pretreated plant materials. Journal of Food Engineering 316:110822

doi: 10.1016/j.jfoodeng.2021.110822
[35]

Han Z, Cai MJ, Cheng JH, Sun DW. 2018. Effects of electric fields and electromagnetic wave on food protein structure and functionality: a review. Trends in Food Science & Technology 75:1−9

doi: 10.1016/j.jpgs.2018.02.017
[36]

Surano B, Leiva G, Marshall G, Maglietti F, Schebor C. 2022. Pulsed electric fields using a multiple needle chamber to improve bioactive compounds extraction from unprocessed Opuntia ficus-indica fruits. Journal of Food Engineering 317:110864

doi: 10.1016/j.jfoodeng.2021.110864
[37]

Demir E, Tappi S, Dymek K, Rocculi P, Gómez Galindo F. 2023. Reversible electroporation caused by pulsed electric field – opportunities and challenges for the food sector. Trends in Food Science & Technology 139:104120

doi: 10.1016/j.jpgs.2023.104120
[38]

Aoude C, Lammerskitten A, Parniakov O, Zhang R, Grimi N, et al. 2022. Equipment and recent advances in pulsed electric fields. In Innovative and Emerging Technologies in the Bio-Marine Food Sector, eds. Garcia-vaquero M, Rajauria G. Amsterdam: Elsevier. pp. 149–72 doi: 10.1016/B978-0-12-820096-4.00011-0

[39]

Buchmann L. 2020. Emerging pulsed electric field process development for bio-based applications. Thesis. Switzerland: ETH Zurich. 192 pp. doi: 10.3929/ethz-b-000424115

[40]

Arshad RN, Abdul-Malek Z, Munir A, Buntat Z, Ahmad MH, et al. 2020. Electrical systems for pulsed electric field applications in the food industry: an engineering perspective. Trends in Food Science & Technology 104:1−13

doi: 10.1016/j.jpgs.2020.07.008
[41]

Chudasama M, Singh DK, Pradhan RC. 2025. Review on electroporation mechanisms for PEF-assisted extraction and microbial inactivation. Food Engineering Reviews 17:706−26

doi: 10.1007/s12393-025-09416-7
[42]

Jin TZ, Zhang HQ. 2020. Pulsed electric fields for pasteurization: food safety and shelf life. In: Food Safety Engineering, eds. Demirci A, Feng H, Krishnamurthy K. Cham: Springer International Publishing. pp. 553–77 doi: 10.1007/978-3-030-42660-6_21

[43]

Vorobiev E, Lebovka NI. 2022. Cell membrane permeabilization by pulsed electric fields for efficient extraction of intercellular components from foods. In: Pulsed Electric Fields Technology for the Food Industry: Fundamentals and Applications, eds. Raso J, Heinz V, Alvarez I, Toepfl S. Cham: Springer International Publishing. pp. 209–69 doi: 10.1007/978-3-030-70586-2_6

[44]

Huppertz T, Vasiljevic T, Zisu B, Deeth H. 2019. Novel processing technologies: Effects on whey protein structure and functionality. In Whey Proteins, eds. Deeth HC, Bansal N. San Diego, USA: Academic Press. pp. 281–334 doi: 10.1016/B978-0-12-812124-5.00009-6

[45]

Singh H, Blennow A, Gupta AD, Kaur P, Dhillon B, et al. 2022. Pulsed light, pulsed electric field and cold plasma modification of starches: technological advancements & effects on functional properties. Journal of Food Measurement and Characterization, 16:4092−109

doi: 10.1007/s11694-022-01487-y
[46]

Taha A, Mehany T, Pandiselvam R, Siddiqui SA, Mir NA, et al. 2024. Sonoprocessing: mechanisms and recent applications of power ultrasound in food. Critical Reviews in Food Science and Nutrition. 64:6016−54

doi: 10.1080/10408398.2022.2161464
[47]

Amal Sudaraka Samarasinghe HG, Dharmaprema S, Manodya U, Kariyawasam KP, Samaranayake UC. 2024. Exploring impact of the ultrasound and combined treatments on food quality: a comprehensive review. Turkish Journal of Agriculture-Food Science and Technology. 12:349−65

doi: 10.24925/turjaf.v12i2.349-365.6478
[48]

Grillo G, Boffa L, Calcio Gaudino E, Binello A, Rego D, et al. 2022. Combined ultrasound and pulsed electric fields in continuous-flow industrial olive-oil production. Foods 11:3419

doi: 10.3390/foods11213419
[49]

Pataro G, Ferrari G. 2020. Limitations of pulsed electric field utilization in food industry. In: Pulsed Electric Fields to Obtain Healthier and Sustainable Food for Tomorrow, eds. Barba FJ, Parniakov O, Wiktor A. San Diego, USA: Academic Press. pp. 283–310 doi: 10.1016/B978-0-12-816402-0.00013-6

[50]

Gao X, Wang Z, Sun G, Zhao Y, Tang S, et al. 2025. Pulsed electric field (PEF) technology for preserving fruits and vegetables: applications, benefits, and comparisons. Food Reviews International 00:1−26

doi: 10.1080/87559129.2025.2489754
[51]

Guo Y, Wu B, Guo X, Ding F, Pan Z, et al. 2020. Effects of power ultrasound enhancement on infrared drying of carrot slices: moisture migration and quality characterizations. LWT 126:109312

doi: 10.1016/j.lwt.2020.109312
[52]

Zhu X, Das RS, Bhavya ML, Garcia-Vaquero M, Tiwari BK. 2024. Acoustic cavitation for agri-food applications: mechanism of action, design of new systems, challenges and strategies for scale-up. Ultrasonics Sonochemistry. 105:106850

doi: 10.1016/j.ultsonch.2024.106850
[53]

Rout S, Şahin Sevgili S, Srivastav PP, Falsafi SR. 2025. Scale up and industrialization of nonthermal processing approaches: current state, challenges, limitations and future trends. In: Non-thermal Processing of Major Food Macromolecules, eds. Falsafi SR, Rostamabadi H, Rastogi NK. Amsterdam: Elsevier. pp. 381–96 doi: 10.1016/B978-0-443-28973-6.00019-5

[54]

Alemu TT. 2024. Nutritional contribution of fruit and vegetable for human health: a review. International Journal of Health Policy Planning 3:1−9

doi: 10.33140/ijhpp.03.01.04
[55]

Kibr G. 2022. The health benefits of vegetables; preventive implications for chronic non-communicable diseases. In Vegetable Crops − Health Benefits Cultivation, eds. Yildirim E, Ekinci M. UK: IntechOpen. 292 pp. doi: 10.5772/intechopen.101303

[56]

Friedrich M, Sadowska J. 2025. A review of current Polish recommendations on dietary supplementation as a preventive strategy against nutritional deficiencies across the lifespan of healthy individuals. Acta Scientiarum Polonorum Technologia Alimentaria 24:229−42

doi: 10.17306/j.afs.2.1265
[57]

Singh J. 2023. Bioactive nutrients in vegetables for human nutrition and health. In Vegetables for Nutrition and Entrepreneurship, eds. Singh B, Kalia P. Singapore: Springer Nature. pp. 57–72 doi: 10.1007/978-981-19-9016-8_3

[58]

Faisal Manzoor M, Ahmed Z, Ahmad N, Karrar E, Rehman A, et al. 2021. Probing the combined impact of pulsed electric field and ultrasonication on the quality of spinach juice. Journal of Food Processing and Preservation 45:e15475

doi: 10.1111/jfpp.15475
[59]

López-Gámez G, Elez-Martínez P, Martín-Belloso O, Soliva-Fortuny R. 2021. Applying pulsed electric fields to whole carrots enhances the bioaccessibility of carotenoid and phenolic compounds in derived products. Foods 10:1321

doi: 10.3390/foods10061321
[60]

Manzoor MF, Ahmed Z, Ahmad N, Aadil RM, Rahaman A, et al. 2020. Novel processing techniques and spinach juice: quality and safety improvements. Journal of Food Science 85:1018−26

doi: 10.1111/1750-3841.15107
[61]

Anjani G, Ayustaningwarno F, Eviana R. 2022. Critical review on the immunomodulatory activities of carrot’s β-carotene and other bioactive compounds. Journal of Functional Foods 99:105303

doi: 10.1016/j.jff.2022.105303
[62]

Surbhi S, Verma RC, Deepak R, Jain HK, Yadav KK. 2018. A review: food, chemical composition and utilization of carrot (Daucus carota L.) pomace. International Journal of Chemical Studies 6:2921−26

[63]

Alam MR, Lyng JG, Frontuto D, Marra F, Cinquanta L. 2018. Effect of pulsed electric field pretreatment on drying kinetics, color, and texture of parsnip and carrot. Journal of Food Science 83:2159−66

doi: 10.1111/1750-3841.14216
[64]

Ikram A, Rasheed A, Ahmad Khan A, Khan R, Ahmad M, et al. 2024. Exploring the health benefits and utility of carrots and carrot pomace: a systematic review. International Journal of Food Properties 27:180−93

doi: 10.1080/10942912.2023.2301569
[65]

Janiszewska-Turak E, Sitkiewicz I, Janowicz M. 2024. Influence of ultrasound on the rheological properties, color, carotenoid content, and other physical characteristics of carrot puree. Applied Sciences 14:10466

doi: 10.3390/app142210466
[66]

Wang X, Han M, Peng C, Xie A, Fan X, et al. 2024. Moisture distribution change and quality characteristics of ultrasound enhanced heat pump drying on carrot. International Journal of Food Engineering. 20:583−600

doi: 10.1515/ijfe-2024-0050
[67]

Polat A, Izli N, Taskin O. 2022. Ultrasound pre-treatment approach: convective drying of carrot. Latin American Applied Research 52:149−56

doi: 10.52292/j.laar.2022.825
[68]

Tran TTH, Nguyen TTD, Kharaghani A, Le KH. 2023. The impact of ultrasound pre-treatment on hot-air-drying kinetics and quality of carrot slices assessed by simulations and experiments. Applied Sciences 13:11865

doi: 10.3390/app132111865
[69]

Khalil AA, Khan AA, Khalid A, Abid Z, Proestos C, et al. 2023. Comparing the antioxidant properties and volatile compounds of carrot-orange juice blend processed through varied chemical, pasteurization and ultrasound conditions. Ultrasonics Sonochemistry 98:106534

doi: 10.1016/j.ultsonch.2023.106534
[70]

de Haan S, Burgos G, Liria R, Rodriguez F, Creed-Kanashiro HM, et al. 2019. The nutritional contribution of potato varietal diversity in Andean food systems: a case study. American Journal of Potato Research 96:151−63

doi: 10.1007/s12230-018-09707-2
[71]

Burgos G, Zum Felde T, Andre C, Kubow S. 2020. The potato and its contribution to the human diet and health. In The Potato Crop, eds. Campos H, Ortiz O. Cham: Springer International Publishing. pp. 37–74 doi: 10.1007/978-3-030-28683-5

[72]

Kaur S, Singh B, Kaur A. 2023. Bioactive chemicals and biological activities of potato (Solanum Tuberosum L.). In Bioactive Compounds in the Storage Organs of Plants, eds. Murthy HN, Paek KY, Park SY. Switzerland: Springer Nature. pp. 1–22 doi: 10.1007/978-3-031-29006-0_40-1

[73]

Mishra T, Raigond P, Thakur N, Dutt S, Singh B. 2020. Recent updates on healthy phytoconstituents in potato: a nutritional depository. Potato Research 63:323−43

doi: 10.1007/s11540-019-09442-z
[74]

Mierzwa D, Szadzińska J, Radziejewska-Kubzdela E, Lenartowicz T. 2023. Effect of ultrasound on mass transfer during vacuum impregnation of low-porous food materials on the example of potato (Solanum Tuberosum L.). Chemical Engineering and Processing − Process Intensification 188:109375

doi: 10.1016/j.cep.2023.109375
[75]

Carrera C, Aliaño-González MJ, Valaityte M, Ferreiro-González M, Barbero GF, et al. 2021. A novel ultrasound-assisted extraction method for the analysis of anthocyanins in potatoes (Solanum tuberosum L.). Antioxidants 10:1375

doi: 10.3390/antiox10091375
[76]

Rasheed H, Shehzad M, Rabail R, Kowalczewski PŁ, Kidoń M, et al. 2022. Delving into the nutraceutical benefits of purple carrot against metabolic syndrome and cancer: a review. Applied Sciences 12:3170

doi: 10.3390/app12063170
[77]

Lemessa R. 2023. Review on the application of pulsed electric field in some fruit and vegetable processing. International Journal of Food Engineering and Technology 7:73−78

doi: 10.11648/j.ijfet.20230702.11
[78]

Zhang J, Zhang H, Yang M, Zhu C. 2023. Effect of ultrasonic processing on the properties of polyphenol oxidase from potato (Solanum tuberosum L.). Advances in Engineering Technology Research 7:249−54

doi: 10.56028/aetr.7.1.249.2023
[79]

Ambo AI, Patience O, Ayakeme EB. 2023. Evaluation of the proximate composition and metal content of spinach (Spinacia oleracea) from selected towns in Nasarawa State, Nigeria. Science World Journal 18:26−30

[80]

Faujan NH, Zubairi SI, Ahmad Baker AA. 2023. Nutritional and bioactive constituents of antioxidant and antimicrobial properties in Spinacia oleracea: a review. Sains Malays 52:2571−85

doi: 10.17576/jsm-2023-5209-08
[81]

Waseem M, Akhtar S, Manzoor MF, Mirani AA, Ali Z, et al. 2021. Nutritional characterization and food value addition properties of dehydrated spinach powder. Food Science & Nutrition 9:1213−21

doi: 10.1002/fsn3.2110
[82]

Waseem M, Akhtar S, Mehmood T, Qamar M, Saeed W, et al. 2024. Nutritional, safety and sensory quality evaluation of unleavened flatbread supplemented with thermal and non-thermal processed spinach powder. Journal of Agriculture and Food Research 16:101114

doi: 10.1016/j.jafr.2024.101114
[83]

Roberts JL, Moreau R. 2016. Functional properties of spinach (Spinacia oleracea L.) phytochemicals and bioactives. Food & Function 7:3337−53

doi: 10.1039/C6FO00051G
[84]

Zhang ZH, Wang LH, Zeng XA, Han Z, Wang MS. 2017. Effect of pulsed electric fields (PEFs) on the pigments extracted from spinach (Spinacia oleracea L.). Innovative Food Science & Emerging Technologies 43:26−34

doi: 10.1016/j.ifset.2017.06.014
[85]

Akbari F, Mollaei M, Argani P, Daneshfard B, Derakhshan AR. 2024. Spinacia oleracea: exploring the therapeutic potential in Persian medicine and modern pharmacology. Current Drug Discovery Technologies 21:12−28

doi: 10.2174/0115701638275971240201060710
[86]

Meena L, Gowda NN, Sunil CK, Rawson A, Janghu S. 2024. Effect of ultrasonication on food bioactive compounds and their bio-accessibility: a review. Journal of Food Composition and Analysis 126:105899

doi: 10.1016/j.jfca.2023.105899
[87]

Zheng Y, Li M, Hao S, Yang X. 2024. Effect of ultrasonic treatment on the structure and functional properties of protein-fortified potato powder. LWT 214:117098

doi: 10.1016/j.lwt.2024.117098
[88]

Karacabey E, Bardakçı MS, Baltacıoğlu H. 2023. Physical pretreatments to enhance purple-fleshed potatoes drying: effects of blanching, ohmic heating and ultrasound pretreatments on quality attributes. Potato Research 66:1117−42

doi: 10.1007/s11540-023-09618-8
[89]

Mondal MHT, Ahmmed R, Khan MJ. 2025. Ultrasound pretreated freeze-drying of carrot: effect on nutritional value, bioactive compounds and microstructure. Applied Food Research 5:100966

doi: 10.1016/j.afres.2025.100966
[90]

Bi X, Zhou Z, Wang X, Jiang X, Chen L, et al. 2020. Changes in the microbial content and quality attributes of carrot juice treated by a combination of ultrasound and nisin during storage. Food and Bioprocess Technology 13:1556−65

doi: 10.1007/s11947-020-02498-7
[91]

Oda S, Sakaguchi M, Yang X, Liu Q, Iwasaki K, et al. 2021. Ultrasonic treatment suppresses ethylene signaling and prolongs the freshness of spinach. Food Chemistry: Molecular Sciences 2:100026

doi: 10.1016/j.fochms.2021.100026
[92]

Phimolsiripol Y, Buadoktoom S, Leelapornpisid P, Jantanasakulwong K, Seesuriyachan P, et al. 2021. Shelf life extension of chilled pork by optimal ultrasonicated Ceylon spinach (Basella alba) extracts: physicochemical and microbial properties. Foods 10:1241

doi: 10.3390/foods10061241
[93]

Zhang Z, Nie M, Xiao Y, Zhu L, Gao R, et al. 2021. Positive effects of ultrasound pretreatment on the bioaccessibility and cellular uptake of bioactive compounds from broccoli: effect on cell wall, cellular matrix and digesta. LWT 149:112052

doi: 10.1016/j.lwt.2021.112052
[94]

Mahn A, Quintero J, Castillo N, Comett R. 2020. Effect of ultrasound-assisted blanching on myrosinase activity and sulforaphane content in broccoli florets. Catalysts 10:616

doi: 10.3390/catal10060616
[95]

Rodríguez-Mena A, Ochoa-Martínez LA, González-Herrera SM, Rutiaga-Quiñones OM, González-Laredo RF, et al. 2023. Coloring potential of anthocyanins from purple sweet potato paste: ultrasound-assisted extraction, enzymatic activity, color and its application in ice pops. Food Chemistry Advances 3:100358

doi: 10.1016/j.focha.2023.100358
[96]

Liu C, Deng H, Lv M, Du H, Li B, et al. 2025. Impact of pulsed electric fields and ultrasound on the frying characteristics of sweet potato chips. Food and Bioproducts Processing 149:49−57

doi: 10.1016/j.fbp.2024.11.009
[97]

Nunes BV, da Silva CN, Bastos SC, de Souza VR. 2022. Microbiological inactivation by ultrasound in liquid products. Food and Bioprocess Technology 15:2185−209

doi: 10.1007/s11947-022-02818-z
[98]

Shokri S, Jegasothy H, Hliang MM, Augustin MA, Terefe NS. 2022. Thermosonication of broccoli florets prior to fermentation increases bioactive components in fermented broccoli puree. Fermentation 8:236

doi: 10.3390/fermentation8050236
[99]

Yamakage K, Yamada T, Takahashi K, Takaki K, Komuro M, et al. 2021. Impact of pre-treatment with pulsed electric field on drying rate and changes in spinach quality during hot air drying. Innovative Food Science & Emerging Technologies 68:102615

doi: 10.1016/j.ifset.2021.102615
[100]

Liu C, Pirozzi A, Ferrari G, Vorobiev E, Grimi N. 2020. Effects of pulsed electric fields on vacuum drying and quality characteristics of dried carrot. Food and Bioprocess Technology 13:45−52

doi: 10.1007/s11947-019-02364-1
[101]

Liu C, Pirozzi A, Ferrari G, Vorobiev E, Grimi N. 2020. Impact of pulsed electric fields on vacuum drying kinetics and physicochemical properties of carrot. Food Research International 137:109658

doi: 10.1016/j.foodres.2020.109658
[102]

López-Gámez G, Elez-Martínez P, Martín-Belloso O, Soliva-Fortuny R. 2020. Enhancing phenolic content in carrots by pulsed electric fields during post-treatment time: effects on cell viability and quality attributes. Innovative Food Science & Emerging Technologies 59:102252

doi: 10.1016/j.ifset.2019.102252
[103]

Leong SY, Roberts R, Hu Z, Bremer P, Silcock P, et al. 2022. Texture and in vitro starch digestion kinetics of French fries produced from potatoes (Solanum tuberosum L.) pre-treated with pulsed electric fields. Applied Food Research 2:100194

doi: 10.1016/j.afres.2022.100194
[104]

Abduh SBM, Leong SY, Zhao C, Baldwin S, Burritt DJ, et al. 2021. Kinetics of colour development during frying of potato pre-treated with pulsed electric fields and blanching: effect of cultivar. Foods 10:2307

doi: 10.3390/foods10102307
[105]

Salehi F. 2020. Physico-chemical properties of fruit and vegetable juices as affected by pulsed electric field: a review. International Journal of Food Properties 23:1036−50

doi: 10.1080/10942912.2020.1775250
[106]

Delbaere SM, Lanssens L, Bernaerts T, Van Audenhove J, Hendrickx ME, et al. 2023. Cell membrane permeabilization by pulsed electric field treatment impacts biochemical conversions and the volatile profile of broccoli stalks. LWT 187:115307

doi: 10.1016/j.lwt.2023.115307
[107]

López-Gámez G, Elez-Martínez P, Martín-Belloso O, Soliva-Fortuny R. 2021. Pulsed electric field treatment strategies to increase bioaccessibility of phenolic and carotenoid compounds in oil-added carrot purees. Food Chemistry 364:130377

doi: 10.1016/j.foodchem.2021.130377
[108]

Mannozzi C, Fauster T, Haas K, Tylewicz U, Romani S, et al. 2018. Role of thermal and electric field effects during the pre-treatment of fruit and vegetable mash by pulsed electric fields (PEF) and ohmic heating (OH). Innovative Food Science & Emerging Technologies 48:131−37

doi: 10.1016/j.ifset.2018.06.004
[109]

Hemmati A, Mirsaeedghazi H, Aboonajmi M. 2021. The effect of ultrasound treatment on the efficiency of membrane clarification of carrot juice. Journal of Food Processing and Preservation 45:e15001

doi: 10.1111/jfpp.15001
[110]

Nadeem M, Ubaid N, Qureshi TM, Munir M, Mehmood A. 2018. Effect of ultrasound and chemical treatment on total phenol, flavonoids and antioxidant properties on carrot-grape juice blend during storage. Ultrasonics Sonochemistry 45:1−6

doi: 10.1016/j.ultsonch.2018.02.034
[111]

Nowosad K, Sujka M, Pankiewicz U, Kowalski R. 2021. The application of PEF technology in food processing and human nutrition. Journal of Food Science and Technology 58:397−411

doi: 10.1007/s13197-020-04512-4
[112]

Kim S, Jeong SH, Choi HS, Yeo H, Lee DU. 2023. Accelerated brining kinetics and NaCl distribution of Chinese cabbage (Brassica rapa ssp. pekinensis) using pulsed electric field. LWT 179:114634

doi: 10.1016/j.lwt.2023.114634
[113]

Kim SY, Lee YG, Ju HI, Jeon JH, Jeong SH, et al. 2024. The effects of jet-milling and pulsed electric fields on the preservation of spinach juice lutein contents during storage. Foods 13:834

doi: 10.3390/foods13060834
[114]

Wiktor A, Dadan M, Nowacka M, Rybak K, Witrowa-Rajchert D. 2019. The impact of combination of pulsed electric field and ultrasound treatment on air drying kinetics and quality of carrot tissue. LWT 110:71−79

doi: 10.1016/j.lwt.2019.04.060
[115]

Ostermeier R, Hill K, Dingis A, Töpfl S, Jäger H. 2021. Influence of pulsed electric field (PEF) and ultrasound treatment on the frying behavior and quality of potato chips. Innovative Food Science & Emerging Technologies 67:102553

doi: 10.1016/j.ifset.2020.102553