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Manish Mukherjee

@mmukherjee.bsky.social
20 followers 17 following 1 posts

Graduate Student in Kamat lab(https://Kamatlab.com) University of Notre Dame Interested in energy and charge transfer processes in lead halide perovskites. #perovskites #photochemistry

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Reposted by Manish Mukherjee
Prashant Kamat @kamat.bsky.social · 25/03/2026
Just Published Hole Transfer to Carbazole Derivatives: Untold Story of “Self-Assembled Monolayers” Employed in “Halide Perovskite Solar Cells” | The Journal of Physical Chemistry Letters @notredamescience.bsky.social @gszabo.bsky.social @mmukherjee.bsky.social pubs.acs.org/doi/full/10....
pubs.acs.org
Hole Transfer to Carbazole Derivatives: Untold Story of “Self-Assembled Monolayers” Employed in “Halide Perovskite Solar Cells”
Carbazole derivatives, such as MeO-2PACz and 2PACz are known to improve the performance of halide perovskite solar cells by facilitating hole transfer. To assess their interaction with halide perovski...
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Reposted by Manish Mukherjee
Prashant Kamat @kamat.bsky.social · 13/02/2026
Room Temperature Size Tuning of CsPbI3 Quantum Dots | ACS Materials Letters We have CsPbI3 quantum dots (5–13.5 nm) are synthesized by first preparing CsPbBr3 QDs at room temp., followed by halide exchange with iodide ions and characterize excited state properties. pubs.acs.org/doi/10.1021/...
pubs.acs.org
Room Temperature Size Tuning of CsPbI3 Quantum Dots
Size quantization in halide perovskite nanocrystals provides a versatile strategy to tune their optical and electronic properties. We have now synthesized CsPbI3 quantum dots (QDs, 5–13.5 nm) by first...
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Manish Mukherjee @mmukherjee.bsky.social · 14/02/2026
Room Temperature synthesis of CsPbI3 quantum dots of various sizes (5-13.5 nm) is on board now from the KAMAT LAB... I am grateful to Sir(@kamat.bsky.social)for his consistent support and guidance.Feel free to give this "letter" a read... doi.org/10.1021/acsm...
doi.org
Room Temperature Size Tuning of CsPbI3 Quantum Dots
Size quantization in halide perovskite nanocrystals provides a versatile strategy to tune their optical and electronic properties. We have now synthesized CsPbI3 quantum dots (QDs, 5–13.5 nm) by first...
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Reposted by Manish Mukherjee
Prashant Kamat @kamat.bsky.social · 24/08/2025
Iodine’s Wild Ride Leading to Photoinstability in Halide Perovskite Solar Cells | ACS Energy Letters Editors' Choice #FreetoRead article from Kamatlab explaining I2 expulsion and its interaction with HTL, spiro-OMeTAD @gszabo.bsky.social @notredamescience.bsky.social pubs.acs.org/doi/full/10....
pubs.acs.org
Iodine’s Wild Ride Leading to Photoinstability in Halide Perovskite Solar Cells
Understanding processes that contribute to efficiency losses during long-term operation of perovskite solar cells is crucial for achieving operational stability. Although maximum power point tracking...
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Reposted by Manish Mukherjee
Prashant Kamat @kamat.bsky.social · 10/07/2025
Akshaya @akshayac.bsky.social publishes another classic paper in JACS Bandgap Engineering of Halide Perovskite Nanocrystals for Maximizing Hole Transfer: Accessing the Marcus Inverted Region | @jacs.acspublications.org @notredamescience.bsky.social pubs.acs.org/doi/full/10....
pubs.acs.org
Bandgap Engineering of Halide Perovskite Nanocrystals for Maximizing Hole Transfer: Accessing the Marcus Inverted Region
Controlling charge transfer at the semiconductor-acceptor molecule interface is important for improving the performance of semiconductor assisted photocatalytic processes. The difference between the band energies of the semiconductor and the redox potential of the acceptor is known to control the kinetics of charge transfer. By employing p-phenylenediamine (PPD) and m-phenylenediamine (MPD) as probe molecules, we have systematically probed the hole transfer from excited perovskite nanocrystals of different bandgaps. The valence band energy of the donor mixed halide perovskite nanocrystal, which varied from 1.74 to 0.94 V vs NHE through halide composition, viz., varying Cl:Br and Br:I ratio, allowed us to change the driving force (−ΔG) of hole transfer. The rate constant of hole transfer as determined from the transient absorption and photoluminescence decay measurements showed a nonlinear dependence on −ΔG. Analysis of this dependence followed Marcus-electron transfer theory with a reorganization energy of ∼1 eV. Relatively higher reorganization energy as compared to pure solvent showed the ligand shell (oleylamine) and charged nanocrystal lattice playing a major role in the interfacial charge transfer processes. The energy dependence of the charge transfer rate constant provides new insights into the photocatalytic properties of perovskite nanocrystals and ways to maximize the charge transfer yield through bandgap engineering of the semiconductor.
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Reposted by Manish Mukherjee
Prashant Kamat @kamat.bsky.social · 10/07/2025
First paper of Bikram Ghosh from our group Exciton and Hot Charge Carrier Dynamics in a MoS2/(PEA)2PbI4 2D Heterostructure | ACS Nano @notredamescience.bsky.social pubs.acs.org/doi/full/10....
pubs.acs.org
Exciton and Hot Charge Carrier Dynamics in a MoS2/(PEA)2PbI4 2D Heterostructure
Understanding charge carrier dynamics in two-dimensional (2D) semiconductors and their heterostructures is crucial for advancing their application in optoelectronic devices. In this work, two differen...
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Reposted by Manish Mukherjee
Prashant Kamat @kamat.bsky.social · 03/05/2025
HyPe 2024: International Conference on Metal Halide Perovskites | ACS Energy Letters @lakshmipolavarapu.bsky.social pubs.acs.org/doi/10.1021/...
pubs.acs.org
HyPe 2024: International Conference on Metal Halide Perovskites
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Reposted by Manish Mukherjee
Prashant Kamat @kamat.bsky.social · 15/04/2025
FRET or Not To FRET.... Latest Accounts article from our group Photon Management Through Energy Transfer in Halide Perovskite Nanocrystal–Dye Hybrids: Singlet vs Triplet Tuning | Accounts of Chemical Research pubs.acs.org/doi/full/10....
pubs.acs.org
Photon Management Through Energy Transfer in Halide Perovskite Nanocrystal–Dye Hybrids: Singlet vs Triplet Tuning
ConspectusPhotoinduced energy and electron transfer processes offer a convenient way to convert light energy into electrical or chemical energy. These processes remain the basis of operation of thin f...
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Reposted by Manish Mukherjee
Prashant Kamat @kamat.bsky.social · 14/03/2025
Editorial on establishing relationship between variables and effective data presentation "Correlation, Causation and Comparison" | ACS Energy Letters pubs.acs.org/doi/10.1021/...
pubs.acs.org
Correlation, Causation and Comparison
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Reposted by Manish Mukherjee
Prashant Kamat @kamat.bsky.social · 04/03/2025
Manish Mukherjee's first paper in ACS Nano Hole Trapping in Lead Halide Perovskite Nanocrystal–Viologen Hybrids and Its Impact on Back Electron Transfer -Characterization of trapped holes through iodide radical @akshayac.bsky.social @notredamescience.bsky.social pubs.acs.org/doi/full/10....
pubs.acs.org
Hole Trapping in Lead Halide Perovskite Nanocrystal–Viologen Hybrids and Its Impact on Back Electron Transfer
Control of forward and back electron transfer processes in semiconductor nanocrystals is important to maximize charge separation for photocatalytic reduction/oxidation processes. By employing methyl viologen as the electron acceptor, we have succeeded in mapping the electron transfer from excited CsPbI3 nanocrystals to viologen as well as the hole trapping process. The electron transfer to viologen is an ultrafast process (ket = 2 × 1010 s–1) and results in the formation of extended charge separation as electrons are trapped at surface-bound viologen sites and holes at iodide sites. The I2─• formation, which is confirmed through the transient absorption at 750 nm, provides a convenient way to probe trapped holes and its participation in the back electron transfer process. By employing a series of mixed halide compositions, we were able to tune the bandgap and valence band energy of the perovskite donor. The back electron transfer rate constant (kbet = 1.3–2.6 × 107 s–1) is nearly three orders of magnitude smaller than that of forward electron transfer, thus extending the lifetime of the charge-separated state. The weak dependence of the back electron transfer rate constant on the valence band energy suggests that trapping of holes at halide (I or Br) sites is involved in the back electron transfer process. The ability to extend the lifetime of the charge-separated pair can offer new strategies to improve the redox properties of semiconductor-based photocatalytic systems.
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