Physics & Astronomy
Matter, energy, space, time, measurement, and observational systems.
Physics, Engineering & Instrumentation
Physical Sciences & Engineering examines matter, energy, measurement, information, and designed systems. The division joins foundational physics and astronomy to materials characterization, optics, electronics, sensing, robotics, instrumentation, and engineering work that moves from concept through prototype and validation.
Departments
Departments organize disciplinary identity, curriculum, faculty appointments, and research methods within the division.
Matter, energy, space, time, measurement, and observational systems.
Composition, structure, surfaces, provenance, degradation, and analytical characterization.
Electronics, optics, photonics, sensing, embedded systems, and data acquisition.
Design, controls, automation, fabrication, field systems, and product realization.
Questions & domains
Methods
Outputs
Programs

Builds foundations in physics, mathematics, experiment, electronics, optics, sensing, and scientific instrumentation.

Integrates electronics, embedded systems, sensors, controls, robotics, field automation, data acquisition, and engineering design.

Advanced work in optical sensing, spectroscopy, imaging, materials characterization, instrumentation, calibration, and analytical systems.

Develops integrated robotic, sensing, control, and operational systems for field, infrastructure, environmental, agricultural, and research contexts.

Original engineering research across instrumentation, sensing, robotics, photonics, materials, autonomy, infrastructure, and complex technical systems.

Materials characterization, XRF, calibration, quality control, archaeological context, provenance reasoning, and technical reporting.

Structured-light capture, mesh processing, measurement, texture, metadata, web viewers, archival derivatives, and permissions.

Quantum states, measurement, contextuality, symmetry, information, interpretation, and disciplined interdisciplinary reasoning.

Electronics, sensing, embedded systems, robotics, controls, autonomy, field testing, and engineering documentation.

Optical and electronic sensors, calibration, data acquisition, earth observation, signal quality, and field deployment.

Intensive structured-light capture, model processing, measurement, texture, metadata, web presentation, and archival packaging.

A practical orientation to measurement systems, laboratory readiness, sensors, calibration, data capture, safety, and instrument documentation.

Requirements, sensors, embedded systems, robotics, testing, safety, and a demonstrated field-automation prototype.
Courses
Introduces mechanics, energy, waves, electricity, measurement, units, uncertainty, and experimental reasoning through practical systems.
Develops astronomical observation, coordinate systems, imaging, spectroscopy, data reduction, and interpretation of celestial phenomena.
Introduces structure-property relationships and analytical approaches to metals, ceramics, polymers, composites, geological, and cultural materials.
Applies non-destructive and minimally destructive analytical methods to archaeological materials, provenance questions, technology, and conservation documentation.
Examines light, optical systems, detectors, spectroscopy, imaging, and photonic sensing for scientific and engineering applications.
Builds practical foundations in circuits, analog and digital sensing, embedded systems, signal conditioning, and reliable data acquisition.
Integrates mechanical design, electronics, sensing, controls, autonomy, and field testing for robotic and automated systems.
Develops non-contact 3D capture, mesh processing, measurement, texture, metadata, web visualization, and archival derivative workflows.
Academic leadership & faculty
Academic inquiry
Admissions can help identify the most appropriate pathway across the division.