<HashMap><database>biostudies-literature</database><scores/><additional><submitter>Klimek A</submitter><funding>French Government Scholarship France Excellence and the Ministry of Higher Education of Poland</funding><funding>ANR-10-LABX-76-01,STORE-EX</funding><pagination>e05032</pagination><full_dataset_link>https://www.ebi.ac.uk/biostudies/studies/S-EPMC12376531</full_dataset_link><repository>biostudies-literature</repository><omics_type>Unknown</omics_type><volume>12(30)</volume><pubmed_abstract>The necessity of tailoring the structure/texture of carbons to improve the performance of aqueous-based electrical double-layer capacitors (EDLCs) is emphasized. A green soft-salt templating approach allowed the preparation of a series of porous carbons for this target. The EDLCs operating in 1M Li&lt;sub>2&lt;/sub>SO&lt;sub>4&lt;/sub> demonstrated a maximum capacitance of 244 F g&lt;sup>-1&lt;/sup> at 1.6 V (CsCl/KCl-T), long-term cycle life (288 h for LiCl/KCl-T), and a specific energy exceeding 10 Wh kg&lt;sup>-1&lt;/sup>. The physicochemical properties of carbons have been correlated with capacitance, retention, and stability. The investigation by Raman spectroscopy revealed that carbons with the increased disorder, thus, higher I&lt;sub>D&lt;/sub>/I&lt;sub>G&lt;/sub> ratio, are in accord with enhanced capacitance. Active surface area (ASA) values, related to carbon defects, perfectly supported the Raman findings. Surface functionality, i.e., the phenol/ether and carboxyl groups are found to affect capacitance. The carbons showed a predominance of micropores, with a specific surface area (SSA) ranging from 2640 to 1453 m&lt;sup>2&lt;/sup> g&lt;sup>-1&lt;/sup>. In sum, I&lt;sub>D&lt;/sub>/I&lt;sub>G&lt;/sub>, SSA, ASA, and volume of micropores are in linear proportion with capacitance at various regimes. However, the most ordered and less porous materials provided better lifespan performance. Therefore, a good compromise is required to satisfy both high capacitance and the long cycle life of EDLCs.</pubmed_abstract><journal>Advanced science (Weinheim, Baden-Wurttemberg, Germany)</journal><pubmed_title>Impact of Disorder, Porosity, and Surface Chemistry of Salt Templated Carbons on Capacitance.</pubmed_title><pmcid>PMC12376531</pmcid><funding_grant_id>0911/SBAD/2501</funding_grant_id><pubmed_authors>Matei Ghimbeu C</pubmed_authors><pubmed_authors>Klimek A</pubmed_authors><pubmed_authors>Rety B</pubmed_authors><pubmed_authors>Frackowiak E</pubmed_authors></additional><is_claimable>false</is_claimable><name>Impact of Disorder, Porosity, and Surface Chemistry of Salt Templated Carbons on Capacitance.</name><description>The necessity of tailoring the structure/texture of carbons to improve the performance of aqueous-based electrical double-layer capacitors (EDLCs) is emphasized. A green soft-salt templating approach allowed the preparation of a series of porous carbons for this target. The EDLCs operating in 1M Li&lt;sub>2&lt;/sub>SO&lt;sub>4&lt;/sub> demonstrated a maximum capacitance of 244 F g&lt;sup>-1&lt;/sup> at 1.6 V (CsCl/KCl-T), long-term cycle life (288 h for LiCl/KCl-T), and a specific energy exceeding 10 Wh kg&lt;sup>-1&lt;/sup>. The physicochemical properties of carbons have been correlated with capacitance, retention, and stability. The investigation by Raman spectroscopy revealed that carbons with the increased disorder, thus, higher I&lt;sub>D&lt;/sub>/I&lt;sub>G&lt;/sub> ratio, are in accord with enhanced capacitance. Active surface area (ASA) values, related to carbon defects, perfectly supported the Raman findings. Surface functionality, i.e., the phenol/ether and carboxyl groups are found to affect capacitance. The carbons showed a predominance of micropores, with a specific surface area (SSA) ranging from 2640 to 1453 m&lt;sup>2&lt;/sup> g&lt;sup>-1&lt;/sup>. In sum, I&lt;sub>D&lt;/sub>/I&lt;sub>G&lt;/sub>, SSA, ASA, and volume of micropores are in linear proportion with capacitance at various regimes. However, the most ordered and less porous materials provided better lifespan performance. Therefore, a good compromise is required to satisfy both high capacitance and the long cycle life of EDLCs.</description><dates><release>2025-01-01T00:00:00Z</release><publication>2025 Aug</publication><modification>2026-05-09T19:06:31.87Z</modification><creation>2026-04-08T01:11:07.273Z</creation></dates><accession>S-EPMC12376531</accession><cross_references><pubmed>40443302</pubmed><doi>10.1002/advs.202505032</doi></cross_references></HashMap>