741 to 750 of 818 Results
RAR Archive - 529.3 KB -
MD5: f73948252268d53198a200d57268bff7
|
RAR Archive - 4.1 MB -
MD5: db50b4528cdf73142508b2c910626f70
|
RAR Archive - 3.2 MB -
MD5: 572a228ab9a9553f3e74602ddc55512a
|
RAR Archive - 588.1 KB -
MD5: 30688e8b7a04e8096cade6cccd22f7a8
|
RAR Archive - 119.4 KB -
MD5: 0f8fb636f1a1ca439f5caaa458d5b720
|
RAR Archive - 18.4 MB -
MD5: 1d1d82c9a78057a0ae46fec30486fe70
|
RAR Archive - 1.5 MB -
MD5: 6ac62a455ab8c967f2f4d9ee7edb6918
|
RAR Archive - 443.7 KB -
MD5: 51e8cab9be69c2508fa8b146007f0615
|
Mar 18, 2019 - Li Mingjie
Li, Mingjie; Saikat Bhaumik; Teck Wee Goh; Muduli Subas Kumar; Natalia Yantara; Michael Gra¨tzel; Subodh Mhaisalkar; Nripan Mathews; Sum, Tze Chien, 2019, "Replication Data for: Slow cooling and highly efficient extraction of hot carriers in colloidal perovskite nanocrystals", https://doi.org/10.21979/N9/U8RXH5, DR-NTU (Data), V1
Hot-carrier solar cells can overcome the Shockley–Queisser limit by harvesting excess energy from hot carriers. Inorganic semiconductor nanocrystals are considered prime candidates. However, hot-carrier harvesting is compromised by competitive relaxation pathways (for example, in... |
Mar 18, 2019 -
Replication Data for: Slow cooling and highly efficient extraction of hot carriers in colloidal perovskite nanocrystals
RAR Archive - 7.4 MB -
MD5: c4294b81fa5aa2897481fce6e3e5ec3b
|
