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Prakash Parida

Publications and source records attributed to Prakash Parida.

17 recordsLinked to original sources

Janus MgAlB_2 MBene: a dipole-engineered anode for ultrafast Li-ion transport and exceptional lithium storage

In this work, we propose a group II/IIIA-based Janus MBene, MgAlB_2, and investigate its electrochemical properties using first-principles calculations. The substitution of one Mg layer in Mg_2B_2 MBene by an Al layer breaks the structural symmetry and generates a permanent out-of-plane polarization, giving rise to a distinct electronic environment compared with the parent Mg_2B_2 and Al_2B_2 monolayers. Electronic-structure analysis reveals enhanced orbital hybridization among B, Mg, and Al states near the Fermi level, resulting in improved electronic delocalization across the monolayer. The Janus MgAlB_2 monolayer is found to possess excellent dynamical, mechanical, and thermal stability. Owing to its polarization-modified energy landscape, Li ions migrate with an exceptionally low diffusion barrier of 17.1 meV, corresponding to a room-temperature diffusion coefficient of 3.43x10^-10 cm^2/s. Unlike the pristine Mg_2B_2 and Al_2B_2 monolayers, which support only a single stable adsorption layer, MgAlB_2 accommodates two complete Li layers. Detailed analysis shows that the residual polarization retained after first-layer lithiation continues to promote Li adsorption, whereas increasing Li-Li electrostatic interactions eventually limit further storage. As a result, the Janus monolayer delivers a high theoretical specific capacity of 1470.24 mAh/g together with a small volume expansion of only 3.7% during maximum lithiation. The present study demonstrates that intrinsic polarization can be utilized to regulate both the thermodynamics and kinetics of Li storage, providing a design strategy for high-rate and high-capacity two-dimensional electrode materials.

cond-mat.mtrl-sci

Electrochemical Performance of Gold Monolayers for Lithium-Ion Batteries: A First Principles Study

Being motivated by recent synthesis of a monolayer of gold, named goldene, from the nano-laminated ternary ceramic phase of Ti3AuC2, we are proposing two phases of goldene viz. goldene-I and goldene-II as anode material for Lithium-Ion batteries using first principles study. This innovative goldene-I monolayer, composed of triangular motifs of gold atoms, exhibits remarkable properties owing to its unique geometric configuration and intrinsic stability. In contrast, a theoretical structure known as goldene-II, featuring a combination of triangular and hexagonal motifs, has been proposed. This structure possesses intrinsic, periodically distributed pores among Au atoms and demonstrates structural integrity and mechanical robustness, even under lithium adsorption. The electronic band spectra and projected density of states reveal the metallic nature of both phases of goldene. Electrochemical evaluations reveal that goldene-II offers favorable lithium-ion adsorption energies, efficient charge transfer, and volumetric capacities. Goldene-I achieves a volumetric capacity of 0.713 Ah/cm3, while goldene-II reaches 0.783 Ah/cm3, confirming its high suitability for lithium storage volumetric capability. Moreover, goldene-I has an ultra-low barrier height of 15 meV, which supports rapid lithium-ion transport.

cond-mat.mtrl-sci

Enhanced thermopower in two-dimensional ruthenium dichalcogenides $RuX_2$ (X = S, Se): a first-principles study

Transition metal dichalcogenides (TMDs) have garnered attention for their potential in thermoelectric applications due to their unique electronic properties and tunable bandgaps. In this study, we systematically explore the electronic and thermoelectric properties of $T^{\prime}-RuX_2$ (X = S, Se) using first-principles calculations and semi-classical Boltzmann transport equations. Our findings confirm that $T^{\prime}-RuX_2$ is energetically and mechanically stable, with high thermopower values such that $T^{\prime}-RuS_2$ exhibits a Seebeck coefficient of $2685~\mu V/K$ for hole doping and $2585~\mu V/K$ for electron doping, while $T^{\prime}-RuSe_2$ shows values of $1515~\mu V/K$ and $1533~\mu V/K$ for hole and electron doping, respectively. Both materials exhibit reasonable power factors and $ZT$ values, with p-type $T^{\prime}-RuS_2$ and $T^{\prime}-RuSe_2$ achieving maximum ZT values of 0.85 and 0.87, respectively, at 1200~K along the y-direction. These results highlight $T^{\prime}$-$RuS_2$ and $T^{\prime}$-$RuSe_2$ as promising candidates for high-temperature TMD-based thermoelectric devices.

cond-mat.mtrl-sci

Thermoelectric performance of quantum dots embedded in an Aharonov-Bohm ring: a Pauli master equation approach

Within linear response theory using Pauli master equation approach, we have investigated the thermoelectric properties of quantum dots (QDs) embedded in an Aharonov-Bohm (AB) ring weakly coupled to two metallic electrodes. This study explores the impact of magnetic flux on thermoelectric transport, emphasizing the role of quantum interference induced by the flux. When the magnetic flux is varied from 0 to one quantum of flux $\Phi = \Phi_{0} = \frac{h}{e}$, both the electrical conductance and the thermoelectric figure of merit ($ZT$) significantly increase by two order of magnitude. Moreover, our investigation into the effects of onsite and inter-site Coulomb interactions in this nanojunction indicates that an optimal $ZT$ is attained with moderate onsite Coulomb interaction and minimal inter-site Coulomb interaction. We briefly discussed the effects of asymmetric arrangements of triple QDs within an AB ring. However, within our parameter regime, a symmetric arrangement offers superior thermoelectric performance compared to asymmetric configurations. Furthermore, we explored how increasing the number of QDs in the ring enhances the thermoelectric properties, resulting in a potential $ZT$ value of around $0.43$. This study shows that arranging multiple QDs symmetrically in an AB ring can result in significant thermoelectric performance in nanostructured system at low temperatures.

cond-mat.mes-hall

Unravelling The potential of Hybrid Borocarbonitride Biphenylene 2D Network for Thermoelectric Applications: A First Principles Study

In this study, we investigate a novel hybrid borocarbonitrides (bpn-BCN) 2D material inspired by recent advances in carbon biphenylene synthesis, using first-principles calculations and semi-classical Boltzmann transport theory. Our analysis confirms the structural stability of bpn-BCN through formation energy, elastic coefficients, phonon dispersion, and molecular dynamics simulations at 300 K and 800 K. The material exhibits an indirect band gap of 0.19 eV (PBE) between the X and Y points and a direct band gap of 0.58 eV (HSE) at the X point. Thermoelectric properties reveal a high Seebeck coefficient, peaking at for n-type carriers at 200K along the x-axis, while n-type has a maximum of The electrical conductivity is for hole carriers, surpassing that of conventional 2D materials. The consequences of the high Seebeck coefficient and conductivity reflect a high-power factor with a peak value of at 1000K for p-type carriers along the y-axis whereas, for n-type. Moreover, the highest observed values were 0.78 (0.72) along the x (y) direction at 750 K for p-type and 0.57 (0.53) at 750 K along the x (y) axis for n-type. Our findings suggest that the bpn-BCN 2D network holds significant potential for thermoelectric applications due to its exceptional performance.

cond-mat.mtrl-sci

Iron-Arsenide monolayer as an anode materials for Lithium-ion batteries: A first-principles study

This theoretical investigation delves into the structural, electronic, and electrochemical properties of two hexagonal iron-arsenide monolayers, 1T-FeAs and 1H-FeAs, focusing on their potential as anode materials for Lithium-ion batteries. Previous studies have highlighted the ferromagnetic nature of 1T-FeAs at room temperature.Our calculations reveal that both phases exhibit metallic behaviour with spin-polarized electronic band structures. Electrochemical studies show that the 1T-FeAs monolayer has better ionic conductivity for Li ions than the 1H-FeAs phase, attributed to a lower activation barrier of 0.38 eV. This characteristic suggests a faster charge/discharge rate. Both FeAs phases exhibit comparable theoretical capacities 374 mAh/g, outperforming commercial graphite anodes. The average open-circuit voltage for maximum Li atom adsorption is 0.61 V for 1H-FeAs and 0.44 V for 1T-FeAs. The volume expansion over the maximum adsorption of Li atoms on both phases is also remarkably less than the commercially used anode material such as graphite. Further, the adsorption of Li atoms onto 1H-FeAs induces a remarkable transition from ferromagnetism to anti-ferromagnetism, with minimal impact on the electronic band structure. In contrast, the original state of 1T-FeAs remains unaffected by Li adsorption. To summarize, the potential of both 1T-FeAs and 1H-FeAs monolayers as promising anode materials for Lithium-ion batteries, offering valuable insights into their electrochemical performance and phase transition behaviour upon Li adsorption.

cond-mat.mtrl-sci

Theoretical study of {\delta}-5 boron monolayer as an anode material for Li and non-Li ion batteries

We have studied the electrochemical performance of the delta-5 boron monolayer as an anode material for alkali metal (AM) and alkali earth metal (AEM) ion batteries using density functional theory simulations. The electronic properties, adsorption, diffusion rate, and storage behavior of various metal atoms (M) in the {\delta}-5 boron monolayer are explored. Our study shows that the delta-5 boron monolayer possesses high electrical conductivity and a low activation barrier for electron and metal ion transit (0.46-1.72 eV), indicating a fast charge/discharge rate. Furthermore, the theoretical capacities of the {\delta}-5 boron monolayer for Li, Na, and K are found to be greater than those of commercial graphite. The average open-circuit voltage for AM and AEM is reasonably low and in the range of 0.14-0.88 V. Our results show that {\delta}-5 boron monolayer could be a promising anode material in lithium-ion and non-lithium ion rechargeable batteries.

cond-mat.mtrl-sci

Band structure evolution from kagome to Lieb under periodic driving field

We theoretically investigate the light-induced transition of the kagome quasienergy spectrum to the Lieb like band structure under periodic driving fields. A generalized framework for the renormalized hopping potential is derived, applicable to any two-dimensional lattice with arbitrary field polarizations. By applying this framework to a kagome lattice driven by linearly polarized light in off-resonant condition, we demonstrate the ability to tune the hopping strength along specific bonds to zero. This tuning induces the merging of Dirac points at high-symmetry points in the Brillouin zone, governed by the field parameters. At specific parameter values, this merging facilitates a transition from the kagome quasienergy spectrum to the Lieb band structure with reduced bandwidth. Our results highlight the critical role of controlled electron hopping in driving this electronic transition, offering valuable insights into the manipulation of electronic properties in periodically driven systems.

cond-mat.mes-hall

Engineering two-dimensional kagome topological insulator from porous graphene

Our study sets forth a carbon based two-dimensional (2D) kagome topological insulator without containing any metal atoms, that aligns the Fermi level with the Dirac point without the need for doping, overcoming a significant bottleneck issue observed in 2D metal-organic frameworks (MOFs)-based kagome structures. Our 2D kagome structure formed by creating patterned nano pores in the graphene sheet, nomenclatured as porous graphene-based kagome lattice (PGKL), is inspired by the recent bottom-up synthesis of similar structures. Because of absence of mirror symmetry in our porous graphene, by considering only first nearest neighbour intrinsic spin-orbit coupling (ISOC) within the tight-binding model unlike mostly used next nearest neighbour ISOC in the Kane-Mele model for graphene, PGKL exhibits distinctive band structures with Dirac bands amidst flat bands, allowing for the realization of topological states near the Fermi level. Delving into Berry curvature and Chern numbers provides a comprehensive understanding of the topological insulating properties of PGKL, offering valuable insights into 2D topological insulators. Analysis of the 1-D ribbon structure underscores the emergence of topological edge states.

cond-mat.mes-hall

Predicting edge-localized monovacancy defects in zigzag graphene nanoribbons from Floquet quasienergy spectrum

In this work, we prescribe a theoretical framework aiming at predicting the position of monovacancy defects at the edges of zigzag graphene nanoribbons (ZGNRs) using Floquet-Bloch formalism, which can be experimentally observed through time- and angle-resolved photoemission spectroscopy (tr-ARPES). Our methodology involves an in-depth investigation of the Floquet quasienergy band spectrum influenced by light with varying polarization across a range of frequencies. Particularly under the influence of circularly polarized light with a frequency comparable to the bandwidth of the system, our findings suggest a promising approach for locating monovacancy defects at either edge, a challenge that proves intricate to predict from the ARPES spectrum of ZGNRs with monovacancy defects. This has been achieved by analyzing the orientation of the Floquet edge state and the appearance of new Dirac points in the vicinity of the Fermi level. The real-world applications of these captivating characteristics underscore the importance and pertinence of our theoretical framework, paving the way for additional exploration and practical use. Our approach, employing the Floquet formalism, is not limited to monovacancy-type defects; rather, it can be expanded to encompass various types of vacancy defects.

cond-mat.mes-hall

Charge and Spin Thermoelectric Transport in Benzene-Based Molecular Nano-Junctions: A Quantum Many-Body Study

Within the Coulomb blockade regime, our study delves into the charge, spin, and thermoelectric transport characteristics in a benzene-based molecular nano-junction using the Pauli master equation and linear response theory. The charge- and spin-transport studies show strong negative differential conductance features in the current-voltage ($I-V$) characteristics for the ortho and meta connections of electrodes on either side. Contrarily, the para-connection displays Coulomb staircase behavior. Exploring spin current behavior in the presence of spin-polarized electrodes or external Zeeman field, we establish a methodology that facilitates precise control over the specific spin flow. Various charge and spin thermoelectric transport coefficients have been studied with varying chemical potentials. We focus on spin-polarized-conductance, the Seebeck coefficient, and the figure of merit. By adjusting electrode polarization or employing an external magnetic field, we achieve an impressive peak value for the spin thermoelectric figure of merit, approximately 4.10. This outcome underscores the strategic value of harnessing both spin-polarized electrodes and external magnetic fields within the domain of spin caloritronics.

cond-mat.mes-hall

Small Heterocyclic Molecule as Multistate Transistor: A Quantum Many-body Approach

Weakly coupled molecular junctions are an active and important field of research as they exhibit various non-linear transport phenomena. We have investigated the carrier transport through weakly coupled B2C2N2H6 molecules using quantum many-body approach coupled with kinetic (master) equations. Interestingly, various types of non-linear current-voltage characteristics, such as, negative differential conductance (NDC), rectifications, Coulomb staircase, which is the hallmark of multistate transport devices, have been obtained. The source-drain voltage induced change in the occupation probabilities of low-lying many-body states which are different in nature towards carrier transport, directly control the net current flowing through the molecular junctions. We further investigate the effect of different kinds of perturbations such as gate voltage and perpendicular magnetic field, over carrier-flow through this molecular bridge. Interestingly, we find that depending on the strength of the applied perturbating field, several phenomena, such as switching off of current, suppression of NDC appears in the devices. Fundamentally, this applied perturbations modifies both the site charge density as well as occupation probabilities of transport active channels, resulting in a significant alteration in transport behavior of this molecular junction.

cond-mat.mes-hall

Cyclopentadienyl-Benzene Based Sandwich Molecular Wires Showing Efficient Spin Filtering, Negative Differential Resistance, and Pressure Induced Electronic Transitions

Using density functional theory, we investigate TM-cyclopentadienyl-benzene sandwich molecular wires (SMWs) which are composites of TM-cyclopentadienyl and TM-benzene wires (TM = transition metal (V, Fe)). All the SMWs are found to be highly stable ferromagnetic half-metals, showing spin switching behavior. Transport calculations show that finite size clusters display spin filter property when coupled with Au electrodes on either side. I-V characteristics of all systems confirm the spin filter property, with Au-BzVCpVBz-Au displaying exceptionally high performance. In addition to spin filtering, the Au-BzFeCpFeBz-Au system also shows negative differential resistance (NDR). Compression causes an abrupt reduction in magnetic moment and a transition to a metallic phase, while stretching causes an increase in magnetic moment. Half-metallicity is preserved for modest amounts of stretching and compression.

cond-mat.mes-hall

Negative Differential Conductance in Nano-junctions: A Current Constrained Approach

A current constrained approach is proposed to calculate negative differential conductance in molecular nano-junctions. A four-site junction is considered where a steady-state current is forced by inserting only the two central sites within the circuit. The two lateral sites (representing e.g. dangling molecular groups) do not actively participate in transport, but exchange electrons with the two main sites. These auxiliary sites allow for a variable number of electrons within the junction, while, as required by the current constrained approach, the total number of electrons in the system is kept constant. We discuss the conditions for negative differential conductance in terms of cooperativity, variability of the number of electrons in the junction, and electron correlations.

cond-mat.mes-hall

One-Dimensional Organometallic V-Anthracene Wire and Its B-N Analogue: Efficient Half-Metallic Spin Filters

Using density functional theory, we have investigated the structural, electronic and magnetic properties of infinitely periodic organometallic vanadium-anthracene ($[V_2Ant]_\infinity)$ and $[V_4(BNAnt)_2]_\infinity$(where BNAnt is B-N analogue of anthracene) for their possible application in spintronics. From our calculations, we find that one-dimensional $[V_2Ant]_\infinity$ and $[V_4(BNAnt)_2]_\infinity$ wires exhibit robust ferromagnetic half-metallic and metallic behavior, respectively. The finite sized $V_6Ant_2$ and $V_6(BNAnt)_2$ clusters are also found to exhibit efficient spin filter properties when coupled to graphene electrodes on either side.

cond-mat.mes-hall

Organometallic Vanadium-Borazine Systems: Efficient One- Dimensional Half-Metallic Spin Filters

Using density functional theory, we have investigated the electronic and magnetic properties of finite-size as well as infinitely periodic organometallic vanadium-borazine systems for their possible applications in spintronics devices. From our calculations, we find the finite-size vanadium-borazine systems to be structurally more stable in comparison to their isoelectronic benzene counterparts. All the finite-size vanadium-borazine systems are found to be ferromagnetically stabilized, with the infinite one-dimensional wire exhibiting robust half-metallic behaviour. The finite-size clusters are also found to exhibit efficient spin filter properties when coupled to graphene electrodes.

cond-mat.mes-hall

Negative differential resistance in nanoscale transport in the Coulomb blockade

Motivated by recent experiments, we have studied transport behavior of coupled quantum dot systems in the Coulomb blockade regime using the master (rate) equation approach. We explore how electron-electron interactions in a donor-acceptor system, resembling weakly coupled quantum dots with varying charging energy, can modify the systems response to an external bias, taking it from normal Coulomb blockade behavior to negative differential resistance (NDR) in the curent-voltage characteristics.

cond-mat.mes-hall