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Rezan Demir-Cakan

Explore the profile of Rezan Demir-Cakan including associated specialties, affiliations and a list of published articles. Areas
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Articles 15
Citations 114
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Recent Articles
1.
Sariyer S, Keppetipola N, Sel O, Demir-Cakan R
ChemSusChem . 2025 Jan; :e202402445. PMID: 39869491
This contribution uses a rapid microwave-assisted hydrothermal synthesis method to produce a vanadium-based KMnVO ⋅ HO cathode material (quoted as KMnVOH). The electrochemical performance of KMnVOH is tested in an...
2.
Canbaz E, Aydin M, Demir-Cakan R
Turk J Chem . 2023 Dec; 46(2):356-366. PMID: 38143474
To be used as Na-ion battery anodes, hard carbon electrodes are synthesized from biomass, explicitly hazelnut shell (HS): via hydrothermal carbonization (HTC) followed by further pyrolysis at different temperatures (500,...
3.
Liu F, Lu W, Huang J, Pimenta V, Boles S, Demir-Cakan R, et al.
Nat Commun . 2023 Nov; 14(1):7350. PMID: 37963861
Challenges in enabling next-generation rechargeable batteries with lower cost, higher energy density, and longer cycling life stem not only from combining appropriate materials, but from optimally using cell components. One-size-fits-all...
4.
Erdol Z, Ata A, Demir-Cakan R
ChemSusChem . 2023 Sep; 17(2):e202300998. PMID: 37721954
With their high volumetric capacity and electronic conductivity, sodium-selenium (Na-Se) batteries have attracted attention for advanced battery systems. However, the irreversible deposition of sodium selenide (Na Se) results in rapid...
5.
Halim E, Demir-Cakan R, Perrot H, El Rhazi M, Sel O
J Chem Phys . 2022 Apr; 156(12):124703. PMID: 35364864
To reach a deeper understanding of the charge storage mechanisms of electrode materials is one of the challenges toward improving their energy storage performance. Herein, we investigate the interfacial ion...
6.
Sariyer S, Ghosh A, Dambasan S, Halim E, El Rhazi M, Perrot H, et al.
ACS Appl Mater Interfaces . 2022 Feb; 14(6):8508-8520. PMID: 35119810
Rechargeable batteries employing aqueous electrolytes are more reliable and cost-effective as well as possess high ionic conductivity compared to the flammable organic electrolyte solutions. Among these types of batteries, aqueous...
7.
Dogrusoz M, Demirkan M, Demir-Cakan R
Turk J Chem . 2021 Dec; 45(5):1551-1558. PMID: 34849065
Silicon (Si) containing materials cannot be used in commercial lithium ion batteries due to the mechanical stress problem triggered by volume expansion during cycling. The high-volume change causes mechanical instability...
8.
Cengiz E, Ansari Hamedani A, Hayat Soytas S, Demir-Cakan R
Dalton Trans . 2019 Mar; 48(13):4353-4361. PMID: 30860520
Lithium-sulfur batteries are well-known for their high theoretical specific capacity and high energy density. However, they undergo rapid capacity fading after the initial cycles due to the dissolution of polysulfides...
9.
Celik K, Cengiz E, Sar T, Dursun B, Ozturk O, Akbas M, et al.
J Colloid Interface Sci . 2018 Jul; 530:137-145. PMID: 29966846
Lithium-Sulfur (Li-S) batteries are mostly known for their high energy density and cost-effectiveness. However, their intrinsic problems hinder their implementation into the marketplace. The most pronounced problems are the parasitic...
10.
Patel M, Demir-Cakan R, Morcrette M, Tarascon J, Gaberscek M, Dominko R
ChemSusChem . 2013 Jun; 6(7):1177-81. PMID: 23749434
Battery watch: UV/Vis spectrophotometry is demonstrated as a powerful analytical method for the in situ study of polysulfides. Through the interactions that occur between different chain-length polysulfide molecules and the...