Low-Energy Photon Re-Examination for Internal Molecular Mapping

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Solution Overview

Problem

Conventional microscopy and imaging systems require high energy to achieve precision, which poses risks and is costly, and they are limited in examining internal molecular structures effectively.

Innovation Solution

A system that uses lower energy electrostatic methods to generate and analyze photons, allowing for precise 3D modeling of subatomic particles' positions, orientations, and polarities within molecules, enabling precise internal molecular distance measurements without damaging the target material.

Engineering Contradictions & Design Principles

VSEngineering Contradiction Analysis

1Measurement precision

If higher frequency electromagnetic waves are used to achieve greater measurement precision, then measurement precision is improved, but energy consumption increases and harmful effects on the target material occur

Engineering Contradiction:
Improvemeasurement precisionVSAvoidharmful effects on target material
Core Design Contradiction:
Measurement precisionVSObject-affected harmful factors

Solution Approach 1:

The patent introduces a computational model as an intermediary between the low-energy electromagnetic wave measurement and the final high-precision molecular structure determination. The model processes the lower-precision raw data to infer high-precision molecular positions and orientations without requiring direct high-energy measurement, thus avoiding damage to the target material while achieving precise structural information

Inventive Principle:
Principle #24Intermediary (Mediator)

Solution Approach 2:

The patent changes the measurement parameters by using lower frequency electromagnetic waves that are less harmful to the target material. Instead of relying on the measurement precision directly proportional to photon energy, the system uses computational modeling to transform lower-precision measurements into high-precision molecular structure data, effectively decoupling measurement energy from final precision

Inventive Principle:
Principle #35Parameter changes

2Measurement precision

If higher frequency electromagnetic waves are used to achieve greater measurement precision, then measurement precision is improved, but energy consumption increases

Engineering Contradiction:
Improvemeasurement precisionVSAvoidenergy consumption
Core Design Contradiction:
Measurement precisionVSUse of energy by moving object

Solution Approach 1:

A computational model serves as an intermediary that processes lower-energy measurements to produce high-precision results. The model performs the energy-intensive computational work rather than requiring energy-intensive physical measurements, thereby reducing actual energy consumption while maintaining high measurement precision

Inventive Principle:
Principle #24Intermediary (Mediator)

Solution Approach 2:

The patent replaces the physical measurement system (high-energy electromagnetic waves) with a computational system. Instead of using high-energy photons to directly resolve molecular structures, the system uses low-energy measurements combined with computational modeling to achieve the same precision, substituting computational processing for physical energy expenditure

Inventive Principle:
Principle #28Mechanics substitution (Replace mechanical system)

3Loss of information

If conventional microscopy techniques are used to examine internal molecular structures, then molecular structure information is obtained, but the examination precision is limited and energy consumption is high

Engineering Contradiction:
Improvemolecular structure informationVSAvoidexamination precision
Core Design Contradiction:
Loss of informationVSMeasurement precision

Solution Approach 1:

The patent performs preliminary actions by collecting multiple types of measurement data (scattering patterns, absorption spectra, fluorescence signals) before the final molecular structure determination. These preliminary measurements at lower energies are processed by a computational model to reconstruct high-precision molecular structures, avoiding the need for single high-energy measurements with limited precision

Inventive Principle:
Principle #10Preliminary action

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

This approach achieves high precision in molecular and subatomic particle level examinations using lower energy, reducing risks and costs, while providing detailed information about molecular structures and orientations, enhancing existing microscopy methods.

Implementation Method 1

The system of the present invention uses lower energy, and thereby lower risk and lower cost, electrostatic methods to generate and analyze photons

Methodology Applied
Scientific EffectElectrostatic method: Electrostatics

Implementation Method 2

measuring the photons based upon direction, wavelength and/or polarity to generate a data set of information

Methodology Applied
Scientific EffectElectromagnetic radiation measurement: Electromagnetic Induction

Data Source

PatentUS11774382B1System and method for targeted re-examination, inner layer defect analysis, protein identification, and photon computer
Publication Date: 2023.10.03 VIGEN ERIC ARNO
  • US11774382B1 patent drawing
  • US11774382B1 patent drawing
  • US11774382B1 patent drawing

AI summary

A system includes a target object for examination; electrical transfer points associated with the target object, the electrical transfer points being an application of energy to generate one or more photons; devices for receiving and measuring electromagnetic waves from the one or more photons, to generate a data set of information, the information including at least one of direction, wavelength, and polarity; a computer having a platform to receive the data set of information; generate a model of subatomic particle placement for the photons, as determined by the data set of information; and re-examine the model at one or more of a different initiation-to-destination energy path, a different measuring position, or a different energy input; the receiving of the data set of information, generating of the model, and the re-examination of the model provides information for industrial application.