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Raman Spectroscopy: Overview01:20

Raman Spectroscopy: Overview

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The underlying principle of Raman spectroscopy is based on the interaction between light and matter, specifically molecules' inelastic scattering of photons. When a monochromatic beam of light, typically from a laser source, interacts with a sample, most scattered light has the same frequency as the incident light. This is known as Rayleigh scattering.
However, a small fraction of the scattered light exhibits a frequency shift due to the exchange of energy between the incident photons and...
816
Raman Spectroscopy Instrumentation: Overview01:26

Raman Spectroscopy Instrumentation: Overview

604
A conventional Raman spectrophotometer includes a laser source, a sample holding system, a wavelength selector, and a detector.
The monochromatic laser source, typically using visible or near-infrared radiation, generates a highly focused beam of light. This light interacts with the molecules of the sample, scattering some of the light. Liquid and gaseous samples are usually tested in ordinary glass capillaries, while solids can be analyzed as powders packed in capillaries or as potassium...
604
Insensitive Nuclei Enhanced by Polarization Transfer (INEPT)01:15

Insensitive Nuclei Enhanced by Polarization Transfer (INEPT)

637
Insensitive Nuclei Enhanced by Polarization Transfer (INEPT) is an advanced Nuclear Magnetic Resonance (NMR) technique specifically designed to detect and enhance the signals of low-abundance nuclei, such as carbon-13 and nitrogen-15, in small molecules. The fundamental principle behind INEPT is the transfer of polarization from a more abundant and highly polarizable nucleus, typically hydrogen-1, to the low-abundance nucleus of interest. This process effectively boosts the NMR signal of the...
637
¹³C NMR: Distortionless Enhancement by Polarization Transfer (DEPT)01:20

¹³C NMR: Distortionless Enhancement by Polarization Transfer (DEPT)

1.3K
When proton-coupled carbon-13 spectra are simplified by a broadband proton decoupling technique, structural information about the coupled protons is lost. Distortionless enhancement by polarization transfer (DEPT) is a technique that provides information on the number of hydrogens attached to each carbon in a molecule. While the DEPT experiment utilizes complex pulse sequences, the pulse delay and flip angle are specifically manipulated. The resulting signals have different phases depending on...
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Related Experiment Video

Updated: Oct 29, 2025

Atomic Force Microscopy Cantilever-Based Nanoindentation: Mechanical Property Measurements at the Nanoscale in Air and Fluid
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Atomic Force Microscopy Cantilever-Based Nanoindentation: Mechanical Property Measurements at the Nanoscale in Air and Fluid

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Nanoindentation-enhanced tip-enhanced Raman spectroscopy.

Chih-Feng Wang1, Brian T O'Callahan2, Andrey Krayev3

  • 1Physical Sciences Division, Pacific Northwest National Laboratory, P.O. Box 999, Richland, Washington 99352, USA.

The Journal of Chemical Physics
|July 9, 2021
PubMed
Summary

We developed a novel platform combining nanoindentation with tip-enhanced Raman spectroscopy (TERS) for ultrasensitive chemical detection and imaging of nanostructures.

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Area of Science:

  • Nanotechnology
  • Surface Science
  • Spectroscopy

Background:

  • Atomic force microscopy (AFM) enables precise manipulation of surfaces at the nanoscale.
  • Tip-enhanced Raman spectroscopy (TERS) offers high-resolution chemical analysis.
  • Combining nano-lithography with spectroscopic techniques can unlock new analytical capabilities.

Purpose of the Study:

  • To develop a multimodal platform integrating nanoindentation and TERS.
  • To investigate the properties of indented nanostructures.
  • To demonstrate ultrasensitive chemical detection and reaction imaging using the integrated platform.

Main Methods:

  • Atomic force microscopy-based pulsed-force lithography for nanoindentation.
  • TERS for hyperspectral imaging and chemical analysis of nanostructures.
  • Multimodal characterization including topographic imaging and dark field optical microscopy.

Main Results:

  • Successfully created nanostructures of varying shapes and sizes via nanoindentation.
  • Observed nano-confined and significantly enhanced local fields around indented structures.
  • Demonstrated TERS-based ultrasensitive detection, chemical fingerprinting, and chemical reaction imaging.

Conclusions:

  • The integrated nano-lithography and TERS platform enables versatile nanoscale characterization.
  • Indented nanostructures can support enhanced optical fields for sensitive spectroscopy.
  • This approach provides a single-platform solution for nanoscale chemical analysis and imaging.