<HashMap><database>biostudies-other</database><scores/><additional><omics_type>Unknown</omics_type><volume>3</volume><submitter>Oakes L</submitter><journal>Scientific reports</journal><pagination>3020</pagination><full_dataset_link>https://www.ebi.ac.uk/biostudies/studies/S-EPMC3804850</full_dataset_link><abstract>Silicon materials remain unused for supercapacitors due to extreme reactivity of silicon with electrolytes. However, doped silicon materials boast a low mass density, excellent conductivity, a controllably etched nanoporous structure, and combined earth abundance and technological presence appealing to diverse energy storage frameworks. Here, we demonstrate a universal route to transform porous silicon (P-Si) into stable electrodes for electrochemical devices through growth of an ultra-thin, conformal graphene coating on the P-Si surface. This graphene coating simultaneously passivates surface charge traps and provides an ideal electrode-electrolyte electrochemical interface. This leads to 10-40X improvement in energy density, and a 2X wider electrochemical window compared to identically-structured unpassivated P-Si. This work demonstrates a technique generalizable to mesoporous and nanoporous materials that decouples the engineering of electrode structure and electrochemical surface stability to engineer performance in electrochemical environments. Specifically, we demonstrate P-Si as a promising new platform for grid-scale and integrated electrochemical energy storage.</abstract><repository>biostudies-other</repository><pmcid>PMC3804850</pmcid><data_source>Europe PMC</data_source><pubmed_authors>Mares JW</pubmed_authors><pubmed_authors>Westover A</pubmed_authors><pubmed_authors>Oakes L</pubmed_authors><pubmed_authors>Pint CL</pubmed_authors><pubmed_authors>Chatterjee S</pubmed_authors><pubmed_authors>Erwin WR</pubmed_authors><pubmed_authors>Bardhan R</pubmed_authors><pubmed_authors>Weiss SM</pubmed_authors></additional><is_claimable>false</is_claimable><name>Surface engineered porous silicon for stable, high performance electrochemical supercapacitors.</name><description>Silicon materials remain unused for supercapacitors due to extreme reactivity of silicon with electrolytes. However, doped silicon materials boast a low mass density, excellent conductivity, a controllably etched nanoporous structure, and combined earth abundance and technological presence appealing to diverse energy storage frameworks. Here, we demonstrate a universal route to transform porous silicon (P-Si) into stable electrodes for electrochemical devices through growth of an ultra-thin, conformal graphene coating on the P-Si surface. This graphene coating simultaneously passivates surface charge traps and provides an ideal electrode-electrolyte electrochemical interface. This leads to 10-40X improvement in energy density, and a 2X wider electrochemical window compared to identically-structured unpassivated P-Si. This work demonstrates a technique generalizable to mesoporous and nanoporous materials that decouples the engineering of electrode structure and electrochemical surface stability to engineer performance in electrochemical environments. Specifically, we demonstrate P-Si as a promising new platform for grid-scale and integrated electrochemical energy storage.</description><dates><release>2013-01-01T00:00:00Z</release><publication>2013 </publication><modification>2019-03-27T01:17:27Z</modification><creation>2019-03-27T01:17:27Z</creation></dates><accession>S-EPMC3804850</accession><cross_references><pubmed>24145684</pubmed><doi>10.1038/srep03020 </doi></cross_references></HashMap>