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Dipanjan Basu

Publications and source records attributed to Dipanjan Basu.

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Three-Dimensional Electrostatic and Quantum-Confinement Modeling of Silicon Nanowire Double Quantum Dots

We present a three-dimensional simulation study of silicon nanowire double quantum dots (DQDs) with leads at T = 2 K, which extends beyond traditional effective mass or quasi-1D and quasi-2D approaches typically applied to bulk or planar geometries. A 3-D Poisson solver is self-consistently coupled to 2-D Schrodinger along slices normal to transport (width * thickness) to obtain spatially varying subbands and wavefunctions at T = 2 K. The slice approximation is justified by the large aspect ratio (Ltot/W > 20) and by the small (< 1.2 percent) wavefunction variation observed along the transport direction. The resulting effective conduction-band profile is imported into a full-wave, open-boundary Schrodinger solver to compute the transmission spectrum T(E), and the tunnel coupling (tc) is evaluated from the bonding and antibonding splitting of the first two resonances in T(E). The simulations show that narrow dots (W = 5 nm) provide strong confinement and robust single-electron localization but require higher plunger-gate voltage, whereas wider dots (W = 20 nm) load electrons at lower bias but form shallower, more delocalized states. The tunnel coupling decreases as the dot width and length are increased, due to the reduced wavefunction overlap between the dots, and saturates once W > 2LPG, when longitudinal confinement is dominated by the plunger gate length. The simulated tunnel coupling trend agrees with experimental data reported for the Si DQD device.

cond-mat.mes-hall

Engineering Cryogenic FETs: Addressing SCEs and Impact of Interface Traps Down to 2 K Temperature

This paper presents the design and benchmarking of cryogenic bulk-FETs using an experimentally calibrated TCAD framework that integrates 2-D electrostatics and interface-trap effects from $T = 2$ K to 300 K. For a 28-nm node device, carrier transport is predominantly ballistic at $T = 2$ K and becomes quasi-ballistic as temperature increases. At cryogenic temperatures, higher interface-trap densities increase the effective threshold voltage and suppress subthreshold conduction. However, when the ON-state bias is adjusted to account for the trap-induced $V_t$ shift, interface traps are found to \emph{worsen} $I_{\mathrm{ON}}/I_{\mathrm{OFF}}$ along with degrading the subthreshold swing (SS) and reducing mobility across all temperatures. The spatial standard deviation $\sigma$ of the trap distribution modulates these behaviors: highly localized traps ($\sigma \sim 1$--$2$ nm) exacerbate short-channel effects (SCEs), whereas broader, nearly uniform distributions ($\sigma \ge 50$ nm) elevate the entire barrier and suppress SCEs until saturation as $\sigma \to L_g$. The TCAD predictions closely match experimental data at 4.2 K, 77 K, and 300 K, providing design guidelines to optimize $I_{\mathrm{ON}}/I_{\mathrm{OFF}}$, SS, mobility, and DIBL for cryogenic CMOS technology nodes.

physics.app-ph

Engineering Si-Qubit MOSFETs: A Phase-Field Modeling Approach Integrating Quantum-Electrostatics at Cryogenic Temperatures

This study employs advanced phase-field modeling to investigate Si-based qubit MOSFETs, integrating electrostatics and quantum mechanical effects. We adopt a comprehensive modeling approach, utilizing full-wave treatment of the Schrodinger equation solutions, coupled with the Poisson equation at cryogenic temperatures. Our analysis explores the influence of interface traps on quantum dot (QD) barrier heights, affecting coupling due to tunneling. A wider trap distribution leads to the decoupling of quantum dots. Furthermore, the oscillations in the transmission and reflection coefficients increase as the plunger/barrier gate length increases, reducing the coupling between the QDs. By optimizing plunger and barrier gate dimensions, spacer configurations, and gap oxide lengths, we enhance control over quantum well depths and minimize unwanted wave function leakage. The modeling algorithm is also validated against the experimental data and can accurately capture the oscillations in the Id Vgs caused by the Coulomb blockade at cryogenic temperature

quant-ph