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Mar 11, 2024 -
Replication Data for: Floquet Engineering of Excitons in Two-Dimensional Halide Perovskites via Biexciton States
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MD5: fcf52470e363dcdb6c0b9150641611c7
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Mar 11, 2024 -
Replication Data for: Floquet Engineering of Excitons in Two-Dimensional Halide Perovskites via Biexciton States
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MD5: b6b24c1cdca620f54c5097adf0098e70
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Mar 11, 2024 -
Replication Data for: Floquet Engineering of Excitons in Two-Dimensional Halide Perovskites via Biexciton States
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MD5: 4b2329f513525581c80e9c57cb2e63ac
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Mar 11, 2024 -
Replication Data for: Floquet Engineering of Excitons in Two-Dimensional Halide Perovskites via Biexciton States
ZIP Archive - 889.1 KB -
MD5: c7359373706374e0d9f056e92e2671cf
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Mar 11, 2024 -
Replication Data for: Floquet Engineering of Excitons in Two-Dimensional Halide Perovskites via Biexciton States
ZIP Archive - 874.5 KB -
MD5: 6be4ad59f459f3342ee3e25df6e4b8ef
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Mar 11, 2024 -
Replication Data for: Floquet Engineering of Excitons in Two-Dimensional Halide Perovskites via Biexciton States
ZIP Archive - 482.2 KB -
MD5: 635983b8157ca9cfcaae9f4ea9fb541d
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Mar 11, 2024 -
Replication Data for: Floquet Engineering of Excitons in Two-Dimensional Halide Perovskites via Biexciton States
ZIP Archive - 694.1 KB -
MD5: 7eb842af38be806ee7c21cdd4737a9d4
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Mar 11, 2024 -
Replication Data for: Floquet Engineering of Excitons in Two-Dimensional Halide Perovskites via Biexciton States
ZIP Archive - 872.5 KB -
MD5: d6b5825570218053cba5bf2da5563493
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Mar 11, 2024 -
Replication Data for: Floquet Engineering of Excitons in Two-Dimensional Halide Perovskites via Biexciton States
ZIP Archive - 570.8 KB -
MD5: 8ecf4a78d20aee1198cc2fa1472e1b3b
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Dec 30, 2023 - LIM Jia Wei Melvin
Lim, Jia Wei Melvin; Guo, Yuanyuan; Feng, Minjun; Cai, Rui; Sum, Tze Chien, 2023, "Replication Data for: Making and Breaking of Exciton Cooling Bottlenecks in Halide Perovskite Nanocrystals", https://doi.org/10.21979/N9/IHVBEF, DR-NTU (Data), V1
Harnessing quantum confinement (QC) effects in semiconductors to retard hot carrier cooling (HCC) is an attractive approach for enabling efficient hot carrier extraction to overcome the Shockley−Queisser limit. However, there is a debate about whether halide perovskite nanocrysta... |
