Research
Our lab develops scalable quantum sensing and precision measurement platforms based on solid-state spin defects and optical. We focus on solid-state quantum systems because they can combine nanoscale sensitivity, device compatibility, and scalable control.
Research Directions

Scalable Multiplexed Quantum Sensing with NV Centers
We develop multiplexed quantum sensing platforms based on nitrogen-vacancy centers in diamond and related solid-state spin defects. Our goal is to move beyond single-sensor measurements toward large arrays of individually resolved quantum sensors. By combining spatial light modulation, optical addressing, microwave control, spin readout, and parallel data acquisition, we aim to measure many NV centers simultaneously for high-throughput nanoscale sensing of magnetic fields, spin dynamics, currents, and noise.

Correlated Quantum Noise Spectroscopy of Materials and Devices
We use NV arrays and spin-defect sensors to probe magnetic noise, spin fluctuations, and correlated dynamics in quantum materials and devices. By measuring signals across many spatially separated sensors, we can access local fields as well as pairwise correlations and covariance signals. These measurements can reveal collective excitations, domain dynamics, current flow, and critical behavior in van der Waals magnets, correlated materials, superconductors, and two-dimensional platforms.

AI-Enhanced Quantum Sensing
Multiplexed quantum experiments generate high-dimensional datasets across many sensors, control sequences, and experimental conditions. We develop data-driven methods for denoising, reconstruction, feature extraction, anomaly detection, and adaptive measurement, with the goal of improving information recovery and experimental efficiency. The lab plans to leverage computing resources available through the University at Buffalo Institute for Artificial Intelligence and Data Science and Empire AI.

2D Spin Defects in Novel Materials
We develop negatively charged boron vacancies (VB−) in hexagonal boron nitride as atomically thin quantum sensors. Because these spin defects reside in a two-dimensional host, they can be brought extremely close to materials and devices, enabling nanoscale magnetic, electric, strain, and noise spectroscopy. This direction combines optical microscopy, microwave control, defect engineering, and van der Waals materials integration to build chip-compatible quantum sensing platforms.
Selected Highlights
Representative data, experimental platforms, and movies from our work on multiplexed quantum sensing, NV-array readout, and quantum noise spectroscopy.

Setup Multiplexed NV microscope with optical addressing, microwave control, and parallel readout.

Setup Spin-defect sensing of quantum materials, currents, magnetic textures, and correlated noise.

Lab Setup Multiplexed NV-center microscope operating with lasers in the Kolkowitz Lab.

Optical Control Combined SLM–DMD system for spatially selective optical addressing and control.

Data Parallel readout of individually resolved NV centers.
Movie Multiplexed optical addressing and readout of NV centers.

Data ESR/ODMR measurements across NVs.

Setup ESR MOVie

Data Correlation and covariance measurements across NV arrays for quantum noise spectroscopy.

Data Spin-echo and noise-spectroscopy measurements from solid-state spin sensors.

Data Dark Exciton Transport in TMDs