548
Views
31
CrossRef citations to date
0
Altmetric
Original Articles

Sodium Alginate-Based Ionic Conducting Membranes

, , &
Pages 221-231 | Published online: 12 Jan 2012

Keep up to date with the latest research on this topic with citation updates for this article.

Read on this site (1)

R. C. Sabadini, E. Raphael, S. T. Marques, P. Berci Filho & A. Pawlicka. (2014) Alginate-Jeffamine Covalently Crosslinked Hydrogel. Molecular Crystals and Liquid Crystals 603:1, pages 240-247.
Read now

Articles from other publishers (30)

Niraj Rathore & N. Sandeep. (2023) Solar thermal energy performance on mono/trihybrid nanofluid flow through the evacuated thermal collector tube. International Journal of Hydrogen Energy 48:94, pages 36883-36899.
Crossref
Juan Zhang, Yanen Wang, Qinghua Wei, Mingyang Li, Xiaohu Chen & Jiayi Zhou. (2023) 3D printable, anti-freezing, and rapid self-healing violet phosphorene incorporated hydrogel-based sensors for human motion detection. Composites Part A: Applied Science and Manufacturing 175, pages 107814.
Crossref
Bernd G.K. Steiger & Lee D. Wilson. (2023) Biopolymer-metal composites for selective removal and recovery of waterborne orthophosphate. Chemosphere, pages 140874.
Crossref
Tamilisai Rajendran, Palanisamy Nachimuthu Pachagoundanpalayam, Selvasekarapandian Subramanian & Vengadesh Krishna Manoharan. (2023) Sodium Alginate Doped with Magnesium Perchlorate as Solid Biopolymer Electrolytes for Energy Storage Applications. Macromolecular Chemistry and Physics 224:14.
Crossref
Safia Khan & Mariam Khan. 2023. Sodium Alginate-Based Nanomaterials for Wastewater Treatment. Sodium Alginate-Based Nanomaterials for Wastewater Treatment 161 182 .
Juan Zhang, Yanen Wang, Qinghua Wei, Yanmei Wang, Mingyang Li, Dinghao Li & Longyu Zhang. (2022) A 3D printable, highly stretchable, self-healing hydrogel-based sensor based on polyvinyl alcohol/sodium tetraborate/sodium alginate for human motion monitoring. International Journal of Biological Macromolecules 219, pages 1216-1226.
Crossref
Bernd G. K. Steiger & Lee D. Wilson. (2022) Ternary Metal-Alginate-Chitosan Composites for Controlled Uptake of Methyl Orange. Surfaces 5:4, pages 429-444.
Crossref
N. Vanitha, C. Shanmugapriya, S. Selvasekarapandian, R. Meera Naachiyar, M. Vengadesh Krishna, S. Aafrin Hazaana, K. Nandhini & Mangalam Ramaswamy. (2022) Effect of graphene quantum dot on sodium alginate with ammonium formate (NH4HCO2) biopolymer electrolytes for the application of electrochemical devices. Ionics 28:6, pages 2731-2749.
Crossref
N. Vanitha, C. Shanmugapriya, S. Selvasekarapandian, M. Vengadesh Krishna & K. Nandhini. (2022) Investigation of N–S-based graphene quantum dot on sodium alginate with ammonium thiocyanate (NH4SCN) biopolymer electrolyte for the application of electrochemical devices. Journal of Materials Science: Materials in Electronics 33:18, pages 14847-14867.
Crossref
M. Infanta Diana, S. Selvasekarapandian, P. Christopher Selvin & M. Vengadesh Krishna. (2022) A physicochemical elucidation of sodium perchlorate incorporated alginate biopolymer: toward all-solid-state sodium-ion battery. Journal of Materials Science 57:17, pages 8211-8224.
Crossref
Ângela Semitela, Andreia Leal Pereira, Cátia Sousa, Alexandrina F. Mendes, Paula A.A.P. Marques & António Completo. (2021) Multi-layered electrospinning and electrospraying approach: Effect of polymeric supplements on chondrocyte suspension. Journal of Biomaterials Applications 36:9, pages 1629-1640.
Crossref
Rebecca D. Bierman‐Duquette, Gevick Safarians, Joyce Huang, Bushra Rajput, Jessica Y. Chen, Ze Zhong Wang & Stephanie K. Seidlits. (2021) Engineering Tissues of the Central Nervous System: Interfacing Conductive Biomaterials with Neural Stem/Progenitor Cells. Advanced Healthcare Materials 11:7, pages 2101577.
Crossref
Fernando G. Torres & Gabriel E. De-la-Torre. (2021) Algal-based polysaccharides as polymer electrolytes in modern electrochemical energy conversion and storage systems: A review. Carbohydrate Polymer Technologies and Applications 2, pages 100023.
Crossref
Franciani C. Sentanin, Willian R. Caliman, Rodrigo C. Sabadini, Carla C. S. Cavalheiro, Rui F. P. Pereira, Maria M. Silva & Agnieszka Pawlicka. (2021) Nanocomposite Polymer Electrolytes of Sodium Alginate and Montmorillonite Clay. Molecules 26:8, pages 2139.
Crossref
A. F. Fuzlin & A. S. Samsudin. (2020) Studies on favorable ionic conduction and structural properties of biopolymer electrolytes system-based alginate. Polymer Bulletin 78:4, pages 2155-2175.
Crossref
Wending Pan, Yifei Wang, Xiaolong Zhao, Yan Zhao, Xinhua Liu, Jin Xuan, Huizhi Wang & Dennis Yiu Cheong Leung. (2021) High‐Performance Aqueous Na–Zn Hybrid Ion Battery Boosted by “Water‐In‐Gel” Electrolyte. Advanced Functional Materials 31:15, pages 2008783.
Crossref
Shiliang Liu, Qinglin Wu, Xiuxuan Sun, Yiying Yue, Brenda Tubana, Rongjie Yang & Huai N. Cheng. (2021) Novel alginate-cellulose nanofiber-poly(vinyl alcohol) hydrogels for carrying and delivering nitrogen, phosphorus and potassium chemicals. International Journal of Biological Macromolecules 172, pages 330-340.
Crossref
Fernando G. Torres, Gabriel E. De-la-Torre, Karen N. Gonzales & Omar P. Troncoso. (2020) Bacterial-Polymer-Based Electrolytes: Recent Progress and Applications. ACS Applied Energy Materials 3:12, pages 11500-11515.
Crossref
Sebastián Lorca, Florencio Santos & Antonio J. Fernández Romero. (2020) A Review of the Use of GPEs in Zinc-Based Batteries. A Step Closer to Wearable Electronic Gadgets and Smart Textiles. Polymers 12:12, pages 2812.
Crossref
Pierre Blin, Bruno Boury, Aurelie Taguet, Justine Touja, Laure Monconduit & Snehangshu Patra. (2020) Glycerol-plasticized agarose separator suppressing dendritic growth in Li metal battery. Carbohydrate Polymers 247, pages 116697.
Crossref
A. F. Fuzlin, Y. Nagao, I. I. Misnon & A. S. Samsudin. (2019) Studies on structural and ionic transport in biopolymer electrolytes based on alginate-LiBr. Ionics 26:4, pages 1923-1938.
Crossref
Marilyn C. McNamara, Amir Ehsan Niaraki-Asli, Jingshuai Guo, Jasmin Okuzono, Reza Montazami & Nicole N. Hashemi. (2020) Enhancing the Conductivity of Cell-Laden Alginate Microfibers With Aqueous Graphene for Neural Applications. Frontiers in Materials 7.
Crossref
Maria Manuela Silva, Verónica Zea Bermudez & Agnieszka Pawlicka. 2020. Polymer Electrolytes. Polymer Electrolytes 113 136 .
Rahul Singh & Hee-Woo Rhee. (2019) The rise of bio-inspired energy devices. Energy Storage Materials 23, pages 390-408.
Crossref
Izabel Caldeira, Andressa Lüdtke, Fabiele Tavares, Camila Cholant, Raphael Balboni, Wladimir H. Flores, Alexandre Galio, Agnieszka Pawlicka & César O. Avellaneda. (2017) Ecologically friendly xanthan gum-PVA matrix for solid polymeric electrolytes. Ionics 24:2, pages 413-420.
Crossref
Wennan Hu, Jie Jiang, Dingdong Xie, Shitan Wang, Kaixi Bi, Huigao Duan, Junliang Yang & Jun He. (2018) Transient security transistors self-supported on biodegradable natural-polymer membranes for brain-inspired neuromorphic applications. Nanoscale 10:31, pages 14893-14901.
Crossref
Yanghui Liu, Xiang Wan, Li Qiang Zhu, Yi Shi & Qing Wan. (2014) Laterally Coupled Dual-Gate Oxide-Based Transistors on Sodium Alginate Electrolytes. IEEE Electron Device Letters 35:12, pages 1257-1259.
Crossref
Seda Bekin, Shokat Sarmad, Koray Gürkan, Gönül Keçeli & Gülten Gürdağ. (2014) Synthesis, characterization and bending behavior of electroresponsive sodium alginate/poly(acrylic acid) interpenetrating network films under an electric field stimulus. Sensors and Actuators B: Chemical 202, pages 878-892.
Crossref
Yang Hui Liu, Li Qiang Zhu, Yi Shi & Qing Wan. (2014) Proton conducting sodium alginate electrolyte laterally coupled low-voltage oxide-based transistors. Applied Physics Letters 104:13.
Crossref
A. Pawlicka, D. F. Vieira & R. C. Sabadini. (2013) Gelatin-HCl biomembranes with ionic-conducting properties. Ionics 19:12, pages 1723-1731.
Crossref

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.