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Chemical Communications (Cambridge, England)|August 26, 2015
The chemical origin of the p-type and n-type doping effects in the hybrid methylammonium-lead iodide (MAPbI3) perovskite solar cellsLyubov A Frolova, Nadezhda N Dremova, Pavel A Troshin
Chemical Communications (Cambridge, England)|February 26, 2021
New phenazine based anolyte material for high voltage organic redox flow batteriesElena I Romadina, Denis S Komarov, Keith J Stevenson, et al.
Chemical Communications (Cambridge, England)|September 13, 2019
Metal-ion batteries meet supercapacitors: high capacity and high rate capability rechargeable batteries with organic cathodes and a Na/K alloy anodeRoman R Kapaev, Filipp A Obrezkov, Keith J Stevenson, et al.
Organic & Biomolecular Chemistry|December 12, 2023
Synthesis of <i>C</i><sub>s</sub>-symmetrical C<sub>60</sub> tetra-adducts <i>via</i> reactions of C<sub>60</sub>Cl<sub>6</sub> with CH-acids and enol silyl esterOlga A Kraevaya, Alexander S Peregudov, Alexander F Shestakov, et al.
Organic & Biomolecular Chemistry|April 25, 2006
Unexpected interconversion reaction of 1,4-diaminofullerenesOlesya A Troshina, Pavel A Troshin, Alexander S Peregudov, et al.
Organic Letters|May 7, 2005
C1 C70F38 contains four planar aromatic hexagons; the parallel between fluorination of [60]- and [70]fullerenesPeter B Hitchcock, Anthony G Avent, Natalia Martsinovich, et al.
Chemical Communications (Cambridge, England)|December 23, 2004
C2 C70F38 is aromatic, contains three planar hexagons, and has equatorial addendsPeter B Hitchcock, Anthony G Avent, Natalia Martsinovich, et al.
International Journal of Nanomedicine|May 6, 2020
Fullerene Derivatives as Lung Cancer Cell Inhibitors: Investigation of Potential Descriptors Using QSAR ApproachesHung-Jin Huang, Olga A Kraevaya, Ilya I Voronov, et al.
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