7,781 to 7,790 of 7,967 Results
May 31, 2019 -
Replication Data for: Localized Traps Limited Recombination in Lead Bromide Perovskites
RAR Archive - 3.2 MB -
MD5: 3789c3cbafd03b26c892a939fdf2b120
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May 31, 2019 -
Replication Data for: Localized Traps Limited Recombination in Lead Bromide Perovskites
RAR Archive - 698.6 KB -
MD5: 29dfad9eb853d13ebd9d9d7200179c83
data for supplementary Figure S3 |
May 31, 2019 -
Replication Data for: Localized Traps Limited Recombination in Lead Bromide Perovskites
RAR Archive - 10.5 MB -
MD5: b709ada450bf6241e7d765d4f0046f57
data for supplementary Figure S4 |
May 31, 2019 -
Replication Data for: Localized Traps Limited Recombination in Lead Bromide Perovskites
RAR Archive - 2.2 MB -
MD5: 90be08917f1328c42d9cd6a8c2740257
data for supplementary Figure S5 |
May 31, 2019 -
Replication Data for: Localized Traps Limited Recombination in Lead Bromide Perovskites
RAR Archive - 2.8 MB -
MD5: 12169f8a9ac3da004ccc59528f961d35
data for supplementary Figure S6 |
May 31, 2019 -
Replication Data for: Localized Traps Limited Recombination in Lead Bromide Perovskites
RAR Archive - 3.3 MB -
MD5: b8bcb325d2f5a8993e3649f1d4c6026d
data for supplementary Figure S7 |
May 31, 2019 -
Replication Data for: Localized Traps Limited Recombination in Lead Bromide Perovskites
RAR Archive - 133.9 KB -
MD5: 1baafc2fbdebc3c6fc14de99d05926b8
data for supplementary Figure S8 |
May 31, 2019 -
Replication Data for: Localized Traps Limited Recombination in Lead Bromide Perovskites
RAR Archive - 5.0 MB -
MD5: 721b16a5263115f69d0be30022e760ce
data for supplementary Figure S9 |
May 31, 2019 - SUM Tze Chien
Giovanni, David; Chong, Wee Kiang; Dewi, Herlina Arianita; Thirumal, Krishnamoorthy; Neogi, Ishita; Ramesh, Ramamoorthy; Mhaisalkar, Subodh; Mathews, Nripan; Sum, Tze Chien, 2019, "Replication Data for: Tunable room-temperature spin-selective optical Stark effect in solution-processed layered halide perovskites", https://doi.org/10.21979/N9/BWMJDV, DR-NTU (Data), V2
Ultrafast spin manipulation for opto–spin logic applications requires material systems that have strong spinselective light-matter interaction. Conventional inorganic semiconductor nanostructures [for example, epitaxial II-VI quantum dots and III-V multiple quantum wells (MQWs)]... |
May 31, 2019 - Ankur Solanki
Ankur Solanki; Pankaj Yadav; Silver-Hamill Turren-Cruz; Swee Sien Lim; Michael Saliba; Sum, Tze Chien, 2019, "Replication Data for: Cation influence on carrier dynamics in perovskite solar cells", https://doi.org/10.21979/N9/KAG1U8, DR-NTU (Data), V1
Rubidium and Cesium cations (Rb+ and Cs+) incorporation recently emerged as a viable strategy to enhance perovskite solar cells (PSCs) efficiency. However, a clear understanding of the impact of these cations on the structure-function relationship in relation to the device perfor... |
