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Raheel Hammad

Publications and source records attributed to Raheel Hammad.

3 recordsLinked to original sources

Surface Termination and Band Alignment in 2D Heterostructures

Heterostructures are ubiquitous in many optoelectronic devices and as photocatalysts. One of the key features of a heterojunction is the proper band alignment between the two materials. Estimation of the correct relative band positions with density functional theory (DFT) based electronic structure calculations is often constrained by the accuracy and cost associated with the various DFT functionals. In this study, we introduce a novel computational approach that achieves band alignments closely matching experimental results with the widely used PBE functional. We specifically examine the well-documented MoO3/MoS2 system, a type-II heterojunction. In our setup, the MoS2 layers are kept as it is but for MoO3 the individual layers are chosen differently. These alternative layers have higher surface energy, and hence, the band edges are higher than the conventional layers. This shift in band edges of the alternative MoO3 layers changes the band alignment in MoO3/MoS2 heterojunction from type-III to the experimentally observed type-II character. We also extend this computational strategy to additional systems, demonstrating its versatility and effectiveness.

cond-mat.mes-hall

Photochargeable Li-ion Battery: Type II Heterojunction Exposes Underlying Band Gap in 'Metallic' Lithiated MoS2

Light chargeable metal-ion batteries using semiconductor heterostructures are gaining enormous interest. A few such heterostructures such as MoS2/MoOy and TiS2/TiO2 have been shown to function as photocathodes in photochargeable Li-ion batteries, where the type II set-up has been proposed to generate spatially separated (longer-lived) excitons upon photo-exposure. The Li intercalated MoS2, generated during the discharge cycle of the battery, undergoes a phase transition from the semiconducting (2H) to a metallic (1T) phase, in contrast to its TiS2 counterpart, casting a doubt over the photocharging process. Here, employing density functional theory based traditional as well as unconventional computational schemes along with relevant spectroscopic techniques, we show that in LixMoS2/MoO3 heterostructure an underlying band gap of LixMoS2 is exposed, upto a certain value of x, due to dispersion of electron density onto MoO3 justifying the observed photocharging. We believe that the general concepts explored in this study will be important in the rational design of photo-cathode materials in Li-ion batteries.

cond-mat.mtrl-sci

Photo-Rechargeable Li Ion Batteries using TiS2 Cathode

Photo-rechargeable (solar) battery can be considered as an energy harvesting cum storage system, where it can charge the conventional metal-ion battery using light instead of electricity, without having other parasitic reactions. Here we demonstrate a two-electrode lithium ion solar battery with multifaceted TiS2-TiO2 hybrid sheets as cathode. Choice of TiS2-TiO2 electrode ensures the formation of a type II semiconductor heterostructure while the lateral heterostructure geometry ensures high mass/charge transfer and light interactions with the electrode. TiS2 has a higher lithium binding energy (1.6 eV) than TiO2 (1.03 eV), ensuring the possibilities of higher amount of Li ion insertion to TiS2 and hence the maximum recovery with the photocharging, as further confirmed by the experiments. Apart from the demonstration of solar solid-state batteries, the charging of lithium ion full cell with light indicates the formation of lithium intercalated graphite compounds, ensuring the charging of the battery without any other parasitic reactions at the electrolyte or electrode-electrolyte interfaces. Possible mechanisms proposed here for the charging and discharging processes of solar batteries, based on our experimental and theoretical results, indicate the potential of such systems in forthcoming era of renewable energies.

physics.app-ph