Overcoming Charge-Carrier Localisation in Metal Chalcohalides
Fundacio Scito (2025)
Perovskiteābased timeādomain signalābalancing LiDAR sensor with centimeter depth resolution
InfoMat Wiley (2025) e70104
Abstract:
A novel class of semiconducting compounds, metalāhalide perovskites (MHPs), has emerged as a versatile platform for advanced optoelectronic device architectures, offering a unique combination of exceptional physical properties and facile processing. In this study, we present a monolithic highāspeed photodetector capable of directly sensing the time delay between two light pulses with a temporal resolution of at least 170 ps, corresponding to a light propagation distance of ~5 cmāmaking it well suited for Light Detection and Ranging (LiDAR) applications. This outstanding time resolution is achieved through a signalābalancing detection scheme that effectively overcomes the limitations of conventional photodetectors, whose response speed is inherently limited by chargeācarrier lifetime and transit time. The device exhibits an exceptionally low noise spectral density, comparable to that of stateāofātheāart silicon photodiodes. The fully symmetric device stack comprises a crystalline CsPbBr3 absorber layer tens of microns thick, fabricated via a confined melt process. Comprehensive electroāoptical characterization reveals chargeācarrier lifetimes and mobilities on both microscopic and macroscopic length scales, using transient photoluminescence, timeāresolved photocurrent, time of flight, and terahertz pumpāprobe spectroscopy. The CsPbBr3 layer exhibits chargeācarrier lifetimes exceeding 100 ns, a microscopic electronāhole mobility of 15 ± 1 cm2 Vā1 sā1, and a macroscopic nonādispersive hole mobility of 8.5 cm2 Vā1 sā1. imageCorrelated Vibrational and Electronic Signatures of Surface Disorder in CsPbBr 3 Nanocrystals
ACS Nano American Chemical Society 19:46 (2025) 40159-40169
Abstract:
Lead halide perovskite nanocrystals have emerged as promising candidates for classical light-emitting devices and single-photon sources, owing to their high photoluminescence quantum yield, narrow emission line width and tunable emission. Judicious choice of ligands to passivate nanocrystal surfaces has proven to be critical to the structural stability and optoelectronic performance of such nanocrystals. While many ligands have been deployed, the resulting quality of the nanocrystal surface can be difficult to assess directly. Here, we demonstrate ultralow frequency Raman spectroscopy as a powerful tool to resolve surface-sensitive changes in size and ligand choice in perovskite nanocrystals. By investigating a size series of CsPbBr3 nanocrystals from the strong (5 nm) to the weak (28 nm) confinement range, we show that the line width of Raman-active modes provides a highly selective metric for surface disorder and quality. We further examine a series of 28 nm diameter nanocrystals with four different zwitterionic ligands, unravelling clear links between varying steric effects and surface quality evident from Raman analysis. Photoluminescence and THz photoconductivity probes reveal an evident correlation of charge-carrier dynamics and radiative emission yields with ligand chemistry and surface quality inferred from phonon broadening. We further show that surface defects preferentially trap hot charge carriers, which affects exciton stability and radiative emission yields. Overall, our approach offers powerful insights into optimizing nanocrystal-ligand boundaries to enhance the performance of nanoscale quantum light sources and optoelectronic devices.Photoactive ThiopheneāEnriched TetrathienonaphthaleneāBased Covalent Organic Frameworks
Small Wiley (2025) e11000
Abstract:
The optoelectronic properties of covalent organic frameworks (COFs) can be controlled by the design of their molecular building blocks and assembly. Here, a facile and efficient synthetic route is reported for the novel thiopheneāenriched tetrathienonaphthalene (TTN)ābased node 4,4ā²,4ā³,4ā²ā³ā(naphtho[1,2āb:4,3ābā²:5,6ābā³:8,7ābā³ā²]tetrathiopheneā2,5,8,11ātetrayl)tetraaniline (TTNTA) for constructing imineālinked COFs. Utilizing TTNTA, highly crystalline, thiopheneāenriched donorādonor (DāD) and donorāacceptor (DāA) COFs, denoted as TT COF and BDT(BT)2 COF, are synthesized using two distinct aldehydeāfunctionalized linear linkers: [2,2ā²ābithiophene]ā5,5ā²ādicarbaldehyde (TT) and 7,7ā²ā(4,8ādiethoxybenzo[1,2āb:4,5ābā²]dithiopheneā2,6ādiyl)bis(benzo[c][1,2,5]thiadiazoleā4ācarbaldehyde) (BDT(BT)2), respectively. Highly crystalline and oriented TTNTA COF films on various substrates via a solvothermal method enabled further comprehensive optical and electronic characterizations. Opticalāpump terahertzāprobe spectroscopy revealed effective chargeācarrier mobility values Ļμ = 0.34 ± 0.04 and 0.18 ± 0.02 cm2Vā1sā1 for TT and BDT(BT)2 COF films, respectively. These results reveal distinct chargeātransport characteristics and provide mechanistic insights into their ultrafast chargeācarrier dynamics. The COFs are demonstrated to be photoactive, showing promising potential as photocathodes without coācatalysts in photoelectrochemical water splitting, with notable photocurrent densities of 10 and 15.3 µA cmā2 after 1 h illumination, respectively. This work highlights the potential of TTNTAābased COFs in optoelectronic applications and provides insights into the design of thiopheneāenriched COFs with high crystallinity and photoactive behavior.Impact of Halide Alloying on the Phase Segregation of MixedāHalide Perovskites
Small Structures Wiley (2025) e202500545