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Michael J. Naughton

Publications and source records attributed to Michael J. Naughton.

8 recordsLinked to original sources

Machine Learning to Foundation Models: Artificial Intelligence for Nanophotonic Modeling and Scientific Discovery

Artificial intelligence (AI) is increasingly used to model, design, and study nanophotonic systems. This review traces the development of the field from classical machine learning and deep learning to generative models, transfer learning, transformers, and emerging foundation models. It first introduces major nanophotonic platforms, including nanoparticles, nanoholes, metasurfaces, photonic crystals, multilayer thin films, and integrated photonic devices, together with their main forward and inverse problems. It then reviews data-driven methods for predicting optical spectra and fields, generating structures from target responses, improving designs through optimization, and accounting for fabrication constraints. Generative models are discussed as a way to produce multiple valid solutions to nonunique inverse problems, while transfer learning, few-shot learning, and physics-aware training help reduce data requirements and improve generalization. Recent domain-specific foundation models show that different optical structures and responses can be handled within shared representations, but current systems remain limited in scope and physical grounding. Future progress will depend on multimodal models that connect geometry, materials, spectra, electromagnetic (EM) fields, fabrication data, experiments, and scientific literature with reliable simulation and validation tools. Current foundation models remain domain-specific, and their extension to broader nanophotonic tasks will require stronger physical grounding and validation.

physics.optics↗

Enhanced superconductivity in ultrathin FeSe films on SrTiO3 via resonant anti-shielding: Superconductivity meets superfluidity

A vanishingly small dielectric function reflects a singular polarization response in a medium, leading to collective plasmonic or polaronic excitations that can enhance Cooper pairing in superconductors via a resonant anti-shielding (RAS) effect. Here, we show that RAS can explain the dramatic enhancement of superconductivity-relative to bulk FeSe, observed in single-unit-cell FeSe films on SrTiO$_3$ (STO) and related substrates. Moreover, we present evidence that RAS may play a central role in driving the Cooper pair condensate into a bipolaronic superfluid state. This interpretation aligns with a recent quantum Monte Carlo simulation by Zhang, et al. [Phys. Rev. X 13, 011010 (2023)], which indicated enhanced bipolaronic superconductivity in two-dimensional systems with moderately strong electron-phonon coupling. RAS may therefore represent a promising strategy for engineering high-T$_c$ superconducting heterostructures.

cond-mat.supr-con↗

Ambient condition superconductivity via engineered polaronic environment

A vanishing dielectric function is required for longitudinal plasmonic or polaronic modes in a polarizable uniform medium and, in general, heralds the presence of singular charge fluctuations. It is also known that a vanishing dielectric function of an environment strengthens Cooper pairing in a superconductor via resonant anti-shielding (RAS), regardless of pairing origin. We combine these notions in a strategy to strongly enhance superconductivity. Specifically, we propose a superlattice of an ultrathin superconductor film in direct contact with a monolayer of a metal-organic framework material. This structure possesses a momentum-independent and resonant effective dielectric function, a key feature for RAS-enhanced superconductivity. We show that the superlattice facilitates near perfect volumetric intermixing between the superconductor and the engineered dielectric environment. To estimate the critical temperature $T_c$ enhancement, we use the unrestricted Leuven's scaling method, which relates the spectral integral of the RAS-renormalized Eliashberg function $α^2$F to $T_c$, which we showed previously to be in excellent agreement with ab initio simulations, and which we posit may underlie recent observations of enhanced $T_c$ in FeSe on SrTiO$_3$. We carried out a renormalization of the bare $α^2$F, dividing it directly by |$ε_{DE} (ω)|^2$, where $ε_{DE} (ω)$ is the q-independent dielectric function of the dielectric environment. Our estimates show that ambient temperature and pressure operation could be achievable in the RAS scheme. We also calculated the quantum Fisher information from the dynamic charge susceptibility in the normal state (for vanishing losses) in our proposed superlattice, and our estimate suggests the presence of superconductivity signatures well above $T_c$ due to quantum charge entanglement buildup.

cond-mat.supr-con↗

Enhancing superconductivity with resonant anti-shielding and topological plasmon-polarons

By employing ab initio Migdal-Eliashberg calculations, we predict a 4-fold enhancement of the superconducting critical temperature of MgB$_{2}$ when proximity-coupled to the topological crystal Bi$_{2}$Se$_{3}$. We support this result with calculations using the general Leavens scaling method. We show that this effect is a result of dynamic resonant anti-shielding of Cooper pairs by plasmon polarons of Dirac electrons in the topological crystal. Our calculations show that such superconductivity enhancement varies strongly with Coulomb coupling between plasmon polarons and Cooper pairs, with a pronounced maximum of $\textit{T}_{c}$ at a critical value of the coupling parameter. This feature is universal, and so can occur in other superconductor-topological crystal combinations, including with non-phonon mediated superconductors. We discuss methods to experimentally optimize the key coupling parameter.

cond-mat.supr-con↗

Multidimensional Nature of Molecular Organic Conductors Revealed by Angular Magnetoresistance Oscillations

Angle dependent magnetoresistance experiments on organic conductors exhibit a wide range of angular oscillations associated with the dimensionality and symmetry of the crystal structure and electron energy dispersion. In particular, characteristics associated with 1, 2, and 3 dimensional electronic motion are separately revealed when a sample is rotated through different crystal planes in a magnetic field. Originally discovered in the TMTSF based conductors, these effects are particularly pronounced in the related system (DMET)2I3. Here, experimental and computational results for magnetoresistance oscillations in this material, over a wide range of magnetic field orientations, are presented in such a manner as to uniquely highlight this multidimensional behavior.The calculations employ the Boltzmann transport equation that incorporates the systems triclinic crystal structure, which allows for accurate estimates of the transfer integrals along the crystallographic axes, verifying the 1d, 2d and 3d nature of (DMET)2I3, as well as crossovers between dimensions in the electronic behavior.

cond-mat.str-el↗

Embedded metal nanopatterns for near-field scattering-enhanced optical absorption

Simulations of metal nanopatterns embedded in a thin photovoltaic absorber show significantly enhanced absorbance within the semiconductor, with a more than 300% increase for λ = 800 nm. Integrating with AM1.5 solar irradiation, this yields a 70% increase in simulated short circuit current density in a 60 nm amorphous silicon film. Embedding such metal patterns inside an absorber maximally utilizes enhanced electric fields that result from intense, spatially organized, near-field scattering in the vicinity of the pattern. Appropriately configured (i.e. with a thin insulating coating), this optical metamedium architecture may be useful for increasing photovoltaic efficiency in thin film solar cells, including offering prospects for realistic ultrathin hot electron cells.

cond-mat.mes-hall↗

Upper Critical Field in the Molecular Organic Superconductor (DMET)2I3

We report the temperature dependence of the upper critical magnetic field in the quasi-onedimensional molecular organic superconductor (DMET)2I3, for magnetic field applied along the intrachain, interchain, and interplane directions. The upper critical field tends to saturation at low temperature for field in all directions and does not exceed the Pauli paramagnetic limit. Superconductivity in (DMET)2I3 thus appears to be conventional spin singlet, in contrast to the status of the isostructural Bechgaard salts. We also discuss a magnetic field-induced dimensional crossover effect in the normal metallic state which had previously appeared to be associated with superconductivity.

cond-mat.supr-con↗

Observation and Simulation of All Angular Magnetoresistance Oscillation Effects in the Quasi-One Dimensional Organic Conductor (DMET)2I3

Measurements and calculations of magnetotransport in the molecular organic conductor (DMET)2I3 detect and simulate all known angular magnetoresistance oscillation (AMRO) phenomena for quasi-one dimensional (Q1D) systems. Employing the true triclinic crystal structure in the calculations, these results address the mystery of the putative vanishing of the primary AMRO phenomenon, the Lebed magic angle effect, for orientations in which it was expected to be strongest. They also show a common origin for Lebed and so-called "LN" oscillations, and confirm the generalized nature of AMRO in Q1D systems.

cond-mat.str-el↗