Nanoscale Compositional and Strain Gradients Enable High‐Speed and Amplitude‐Resolved Pyroelectric Sensing

C Ching‐Che Lin (Department of Materials Science and NanoEnginereing Rice University Houston Texas USA) T Tae Joon Park (Department of Materials Science and Engineering, University of California) A Ashwath Bhat (Department of Mechanical Engineering University of California Berkeley California USA) T Tae Yeon Kim (Department of Materials Science and NanoEngineering, Rice University) D Djamila Lou (Department of Materials Science and Engineering University of California Berkeley California USA) D Deokyoung Kang (Rice Advanced Materials Institute) Z Zishen Tian J Jiyeob Kim (Department of Materials Science and NanoEnginereing Rice University Houston Texas USA) S Sreekeerthi Pamula (Rice Advanced Materials Institute Rice University Houston Texas USA) J Jaegyu Kim (Rice Advanced Materials Institute Rice University Houston Texas USA) B Brendan Hanrahan (U.S. Army Combat Capabilities Development Command-Army Research Laboratory 2 , Adelphi, Maryland 20783,) C Chris Dames (Department of Mechanical Engineering) L Lane W. Martin (Rice Advanced Materials Institute)

Abstract

ABSTRACT The frequency response of pyroelectric sensors is fundamentally governed by thermal time constant (τ th , determined by thermal mass and thermal conductance) and electrical impedance arising from film capacitance and readout circuit. Conventional bulk LiTaO 3 detectors are optimized for high responsivity at low modulation frequencies (0.1–10 Hz), possessing a large τ th that thermally averages rapid temperature oscillations at elevated modulation frequencies, limiting fidelity in resolving dynamic varying thermal signals. Here, compositional and strain gradients are introduced into 100‐nm‐thick relaxor‐ferroelectric films reducing τ th to ≈2 µs and producing built‐in potentials (≈1.45 V or 145 kV cm −1 ) that enhance the pyroelectric coefficient and suppress the dielectric constant. This enables complementary dual‐mode operation by enhancing current‐mode electrical responsivity and improving the voltage‐mode figure of merit – advantageous for superior temperature resolution (Δ T min ≈ 30 µK). The responsivity peak shifts to near 1 kHz (>2500‐times higher than conventional bulk sensors), with measurable responsivity extending to a carrier frequency of 100 kHz and amplitude‐resolved detection at modulation frequencies up to 15 kHz. These results establish nanoscale internal‐field engineering can reshape electro‐thermal trade‐off in pyroelectric thin films toward zero‐bias, high‐thermal‐sensitivity, and amplitude‐resolved thermal sensing across a wide frequency bandwidth.

Article Details

Volume / Issue Vol. 38, Issue 44
Published August 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (13)

C

Ching‐Che Lin

Department of Materials Science and NanoEnginereing Rice University Houston Texas USA

T

Tae Joon Park

Department of Materials Science and Engineering, University of California

A

Ashwath Bhat

Department of Mechanical Engineering University of California Berkeley California USA

T

Tae Yeon Kim

Department of Materials Science and NanoEngineering, Rice University

D

Djamila Lou

Department of Materials Science and Engineering University of California Berkeley California USA

D

Deokyoung Kang

Rice Advanced Materials Institute

Z

Zishen Tian

J

Jiyeob Kim

Department of Materials Science and NanoEnginereing Rice University Houston Texas USA

S

Sreekeerthi Pamula

Rice Advanced Materials Institute Rice University Houston Texas USA

J

Jaegyu Kim

Rice Advanced Materials Institute Rice University Houston Texas USA

B

Brendan Hanrahan

U.S. Army Combat Capabilities Development Command-Army Research Laboratory 2 , Adelphi, Maryland 20783,

C

Chris Dames

Department of Mechanical Engineering

L

Lane W. Martin

Rice Advanced Materials Institute