Chemical & Biomedical Imaging· 2026Q1
Understanding and Engineering Contrast in Transient Interferometric Scattering Microscopy
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- Q1SCImago
- 2026year
Short summary
Transient interferometric scattering microscopy (T-iSCAT) offers enhanced single-particle contrast for weak transient signals by leveraging phase-sensitive interference, comparable to transient absorption microscopy (TAM) in reporting excited-state dynamics.
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Key points
- T-iSCAT enhances single-particle contrast via phase-sensitive interference.
- T-iSCAT reports excited-state relaxation dynamics comparable to TAM.
- Contrast in T-iSCAT is governed by local transient polarizability, reference-field, scattering strength, and sample geometry.
- Experimental framework provided for interpreting and optimizing T-iSCAT contrast.
AI-generated from the title and abstract; the full text is not read.
Abstract
Abstract Resolving weak transient optical responses in nanostructures is essential for understanding localized carrier dynamics. Transient interferometric scattering microscopy (T-iSCAT) has recently emerged as a highly sensitive ultrafast imaging modality for weak transient signals, yet its fundamental contrast formation mechanism and sensitivity enhancement have not been systematically demonstrated and validated experimentally. Here, we present a systematic comparison between T-iSCAT and transient absorption microscopy (TAM) under identical wide-field pump–probe conditions using Au and CdS nanomaterials. We demonstrate that T-iSCAT substantially enhances single-particle contrast through phase-sensitive interference while reporting comparable excited-state relaxation dynamics as TAM. Systematic substrate, morphology, and partial-reflector experiments further reveal that T-iSCAT contrast is governed by the local transient polarizability, reference-field amplitude and phase, scattering strength, and sample geometry. This work provides an experimental framework for interpreting and optimizing T-iSCAT contrast, establishing it as a complementary ultrafast imaging approach for weak, heterogeneous, and low-dimensional nanoscale systems.
The authors' abstract, as published at the source. Chemical & Biomedical Imaging, 2026 · DOI ↗
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