Articles published in Journal of Membrane Science & Technology have been cited by esteemed scholars and scientists all around the world. Journal of Membrane Science & Technology has got h-index 13, which means every article in Journal of Membrane Science & Technology has got 13 average citations.

Following are the list of articles that have cited the articles published in Journal of Membrane Science & Technology.

  2024 2023 2022 2021 2020 2019 2018 2017 2016 2015 2014 2013 2012 2011

Total published articles

30 56 60 55 10 7 17 9 27 12 5 16 17 13

Research, Review articles and Editorials

4 0 4 5 4 6 14 2 25 4 3 7 7 10

Research communications, Review communications, Editorial communications, Case reports and Commentary

23 60 56 50 6 1 3 7 2 8 2 9 10 3

Conference proceedings

0 0 0 0 0 0 34 44 0 0 0 0 0 0

Citations received as per Google Scholar, other indexing platforms and portals

118 149 167 156 154 98 54 38 32 26 18 11 7 0
Journal total citations count 972
Journal impact factor 1.92
Journal 5 years impact factor 2.24
Journal cite score 5.4
Journal h-index 13
Important citations

Castellví Fernández, Q. (2017). Non-focal non-thermal electrical methods for cancer treatment (Doctoral dissertation, Universitat Pompeu Fabra).

Polajžer, T., & Miklav?i?, D. (2020). Development of adaptive resistance to electric pulsed field treatment in CHO cell line in vitro. Scientific reports, 10(1), 1-9.

Sachdev, S., Poto?nik, T., Rems, L., & Miklav?i?, D. (2021). Revisiting the Role of Pulsed Electric Fields in Overcoming the Barriers to in vivo Gene Electrotransfer. Bioelectrochemistry, 107994.

Pirc, E., Miklav?i?, D., Urši?, K., Serša, G., & Reberšek, M. (2021). High-Frequency and High-Voltage Asymmetric Bipolar Pulse Generator for Electroporation Based Technologies and Therapies. Electronics, 10(10), 1203.

Abd-Elghany, A. A. (2021). Incorporation of electroendocytosis and nanosecond pulsed electric field in electrochemotherapy of breast cancer cells. Electromagnetic Biology and Medicine, 1-10.

Dermol-?erne, J. (2018). MATHEMATICAL MODELING OF MOLECULAR TRANSMEMBRANE TRANSPORT AND CHANGES OF TISSUES´ DIELECTRIC PROPERTIES DUE TO ELECTROPORATION (Doctoral dissertation, Univerza v Ljubljani, Fakulteta za elektrotehniko).

Sano, M. B., Petrella, R. A., Kaufman, J. D., Fesmire, C. C., Xing, L., Gerber, D., & Fogle, C. A. (2020). Electro-thermal therapy: Microsecond duration pulsed electric field tissue ablation with dynamic temperature control algorithms. Computers in biology and medicine, 121, 103807.

Burke, R. (2017). Investigating the role of voltage-gated ion channels in pulsed electric field effects in excitable and non-excitable cell lines (Doctoral dissertation, Limoges).

Polajžer, T., Dermol–?erne, J., Reberšek, M., O'Connor, R., & Miklav?i?, D. (2020). Cancellation effect is present in high-frequency reversible and irreversible electroporation. Bioelectrochemistry, 132, 107442.

Dermol-?erne, J., Miklav?i?, D., Reberšek, M., Meku?, P., Bardet, S. M., Burke, R., ... & O'Connor, R. (2018). Plasma membrane depolarization and permeabilization due to electric pulses in cell lines of different excitability. Bioelectrochemistry, 122, 103-114.

Scuderi, M., Rebersek, M., Miklavcic, D., & Dermol-Cerne, J. (2019). The use of high-frequency short bipolar pulses in cisplatin electrochemotherapy in vitro. Radiology and oncology, 53(2), 194.

Mercadal, B., Arena, C. B., Davalos, R. V., & Ivorra, A. (2017). Avoiding nerve stimulation in irreversible electroporation: a numerical modeling study. Physics in Medicine & Biology, 62(20), 8060.

Sano, M. B., Fan, R. E., Cheng, K., Saenz, Y., Sonn, G. A., Hwang, G. L., & Xing, L. (2018). Reduction of muscle contractions during irreversible electroporation therapy using high-frequency bursts of alternating polarity pulses: a laboratory investigation in an ex vivo swine model. Journal of Vascular and Interventional Radiology, 29(6), 893-898.

Jusoh, N., Yeong, Y. F., Lock, S. S. M., Lai, L. S., & Suleman, M. S. (2020). Biomethane generation from biogas upgrading by means of thin-film composite membrane comprising Linde T and fluorinated polyimide: optimization of fabrication parameters. RSC Advances, 10(6), 3493-3510.

Zagho, M. M., Hassan, M. K., Khraisheh, M., Al-Maadeed, M. A. A., & Nazarenko, S. (2021). A Review on Recent Advances in CO2 Separation Using Zeolite and Zeolite-like Materials as Adsorbents and Fillers in Mixed Matrix Membranes (MMMs). Chemical Engineering Journal Advances, 100091.

Zagho, M. M., Hassan, M. K., Khraisheh, M., Al-Maadeed, M. A. A., & Nazarenko, S. (2021). A Review on Recent Advances in CO2 Separation Using Zeolite and Zeolite-like Materials as Adsorbents and Fillers in Mixed Matrix Membranes (MMMs). Chemical Engineering Journal Advances, 100091.

Hülagü, M. S. D., Kramer, D. I. V., & Kraume, I. M. (2012, January). Detailed Investigation on Laboratory Scale Mixed-Matrix Membrane Preparation for Gas Separation. In Euromembrane Conference (Vol. 12).

Özdemir, N. K. (2017). Polyimide and PEBAX flat and hollow fiber membranes for gas separation. Universitas Nusantara PGRI Kediri, 1.

Azimi, H., Tezel, H. F., & Thibault, J. (2018). On the Effective Permeability of Mixed Matrix Membranes. Journal of Membrane Science and Research, 4(3), 158-166.

Peydayesh, M., Mohammadi, T., & Bakhtiari, O. (2017). Effective hydrogen purification from methane via polyimide Matrimid® 5218-Deca-dodecasil 3R type zeolite mixed matrix membrane. Energy, 141, 2100-2107.