Backscattered Electron Spectrum Analysis for Sample Density Evaluation

Resolve Bottlenecks,
Find Innovative Solutions
Generate Solutions

Solution Overview

Problem

Existing backscattered electron imaging techniques can evaluate sample compositions but not densities.

Innovation Solution

A method and apparatus that acquire a backscattered electron spectrum, separate the elastically scattered peak into minor peaks by waveform separation, and identify chemical elements and densities from the positions and widths of these peaks.

Engineering Contradictions & Design Principles

VSEngineering Contradiction Analysis

1Measurement precision

If backscattered electron imaging is used to evaluate sample compositions, then composition evaluation is easy and effective, but density evaluation becomes impossible

Engineering Contradiction:
Improvecomposition evaluation capabilityVSAvoiddensity evaluation capability
Core Design Contradiction:
Measurement precisionVSAdaptability or versatility

Solution Approach 1:

The patent segments the elastically scattered peak into multiple minor peaks through waveform separation. This segmentation allows the system to extract multiple independent parameters (positions and widths of minor peaks) from a single spectral feature, enabling both composition identification and density evaluation simultaneously without requiring separate measurement techniques

Inventive Principle:
Principle #1Segmentation

Solution Approach 2:

The patent transitions from using only peak intensity (one dimension) to utilizing both peak position and width (additional dimensions). By extracting information from multiple dimensions of the spectral data, the system achieves both compositional analysis and density measurement, resolving the limitation of traditional backscattered electron imaging

Inventive Principle:
Principle #17Another dimension (Dimensionality change)

2Device complexity

If the elastically scattered peak is treated as a single peak, then the analysis is simple, but both composition and density information cannot be extracted

Engineering Contradiction:
Improveanalysis complexityVSAvoidinformation extraction capability
Core Design Contradiction:
Device complexityVSLoss of information

Solution Approach 1:

The patent applies waveform separation to divide the elastically scattered peak into multiple minor peaks, each carrying specific information. This segmentation enables the extraction of both composition (from peak positions) and density (from peak widths) information that would be lost if the peak were treated as a single entity

Inventive Principle:
Principle #1Segmentation

Solution Approach 2:

The patent introduces waveform separation as an intermediary processing step between raw spectral data and final analysis. This intermediary technique transforms the single peak into multiple resolved peaks, serving as a bridge that enables comprehensive information extraction without significantly increasing overall system complexity

Inventive Principle:
Principle #24Intermediary (Mediator)

Applied Scientific Principles

This section explains which scientific principles are used to turn an abstract innovation direction into a practical engineering solution.

Function Achieved in This Case

Enables precise identification of chemical elements and evaluation of sample densities using backscattered electron spectra.

Implementation Method 1

separating an elastically scattered peak of the backscattered electron spectrum

Methodology Applied
Scientific EffectElastic scattering: Scattering

Implementation Method 2

an electron energy analyzer for spectrally dispersing and detecting backscattered electrons emitted from the sample

Methodology Applied
Scientific EffectEnergy dispersion: Dispersion (of waves)

Data Source

PatentEP4671749A1Evaluation method and analyzer apparatus
Publication Date: 2025.12.31 JEOL LTD
  • EP4671749A1 patent drawingFigure 1
  • EP4671749A1 patent drawingFigure 2
  • EP4671749A1 patent drawingFigure 3~4

AI summary

There is provided an evaluation method of evaluating the density of a sample (S). The evaluation method starts with acquiring (S118) a backscattered electron spectrum from the sample (S). Then, an elastically scattered peak of the spectrum is separated (S120) into a plurality of minor peaks by waveform separation. Information about the positions and widths of the minor peaks is derived. The chemical elements making up the sample (S) are identified (S122) from the positions and widths of the minor peaks.