Area of research
Electrical and Electronic Engineering · Atomic and Molecular Physics, and Optics
Research interest
Argonne conducts fundamental research to understand, predict, and ultimately control matter and energy at the electronic, atomic, and molecular levels. Through a continual pursuit of excellence and scientific achievement, our broad research agenda and unique scientific facilities support every aspect of the innovation ecology: basic research, technology development, and prototype development and testing.
Optical and microstructural characterization of Er3+ doped epitaxial cerium oxide on silicon
Nanocavity-Mediated Purcell Enhancement of Er in TiO<sub>2</sub> Thin Films Grown via Atomic Layer Deposition
The role of the dopant in the electronic structure of erbium-doped TiO2 for quantum emitters
Compute in‐Memory with Non‐Volatile Elements for Neural Networks: A Review from a Co‐Design Perspective
Porous but Mechanically Robust All-Inorganic Antireflective Coatings Synthesized using Polymers of Intrinsic Microporosity
Purcell Enhancement of Erbium Ions in TiO<sub>2</sub> on Silicon Nanocavities
A Wireless Underground Sensor Network Field Pilot for Agriculture and Ecology: Soil Moisture Mapping Using Signal Attenuation
Entrepreneurial Talent Building for 21st Century Agricultural Innovation
Nanoporous Dielectric Resistive Memories Using Sequential Infiltration Synthesis
Aerosol Filtration Efficiency of Common Fabrics Used in Respiratory Cloth Masks
Epitaxial Er-doped Y2O3 on silicon for quantum coherent devices
Response to Letters to the Editor on Aerosol Filtration Efficiency of Common Fabrics Used in Respiratory Cloth Masks: Revised and Expanded Results
Accelerating Materials Development via Automation, Machine Learning, and High-Performance Computing
Silicon compatible Sn-based resistive switching memory
Vanadium Dioxide Circuits Emulate Neurological Disorders
Sequential Infiltration Synthesis for the Design of Low Refractive Index Surface Coatings with Controllable Thickness
Thoreau: A subterranean wireless sensing network for agriculture and the environment
A road towards 25% efficiency and beyond: perovskite tandem solar cells
Effects of the incorporation of alkali elements on Cu(In,Ga)Se2 thin film solar cells
SitS: The Soil Macroscope: A Multivariable Subterranean Sensor Network
EAGER SitS: Photonic Sensor Platform for Point of Interest Soil Sensing
Workshop: The subterranean macroscope: sensor networks for understanding, modeling, and managing soil processes (University of Chicago-Hyde Park, Illinois - October 2017)