Secondary-Electron Microlight Optics for Low-Energy Cell Proliferation

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Solution Overview

Problem

Existing ultra-microlight generators lack efficiency in generating ultra-microlight for optimal cell proliferation effects, necessitating improved structural features to enhance photoelectric and thermionic emission.

Innovation Solution

An ultra-microlight transmission device utilizing a light source module with a photoelectric surface, electron amplification unit, and filter units to generate and optimize ultra-microlight through spectroscopy, diffuse reflection, and diffraction, incorporating a heat radiation member to manage heat and electromagnetic wave generation.

Engineering Contradictions & Design Principles

VSEngineering Contradiction Analysis

1Productivity

If conventional ultra-microlight generators are used, then ultra-microlight can be generated, but the efficiency of generating ultra-microlight for cell proliferation is insufficient

Engineering Contradiction:
Improveultra-microlight generation efficiencyVSAvoidenergy consumption
Core Design Contradiction:
ProductivityVSLoss of energy

Solution Approach 1:

The patent changes the physical parameters of the light generating device by introducing a photoelectric surface and electron amplification unit that convert light to electrons and amplify them, thereby changing the generation mechanism from direct light emission to electron-mediated light emission, which improves ultra-microlight generation efficiency

Inventive Principle:
Principle #35Parameter changes

Solution Approach 2:

The patent replaces conventional thermal or direct electrical light generation mechanisms with a photoelectric conversion system that uses light to generate electrons, which are then amplified and converted back to light, substituting the traditional mechanical/thermal generation process with an electro-optical conversion process that achieves higher efficiency

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

2Productivity

If photoelectric emission efficiency is increased through structural modifications, then ultra-microlight generation efficiency improves, but device complexity increases

Engineering Contradiction:
Improvephotoelectric emission efficiencyVSAvoidstructural complexity
Core Design Contradiction:
ProductivityVSDevice complexity

Solution Approach 1:

The patent employs a nested structure where the photoelectric surface is contained within a housing, the electron amplification unit is positioned within the light path, and filter units are integrated into the overall structure, allowing multiple functional components to be compactly arranged without excessive complexity

Inventive Principle:
Principle #7Nested doll (Nesting)

Solution Approach 2:

The housing serves multiple functions: it contains the photoelectric surface, supports the electron amplification unit, provides structural protection, and may assist in heat dissipation. This multi-functionality reduces the need for separate components, thereby managing device complexity while improving photoelectric emission efficiency

Inventive Principle:
Principle #6Universality (Multi-functionality)

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

The device enhances cell proliferation efficiency by maximizing photoelectric emission and thermionic efficiency, reducing energy consumption, and improving the effectiveness of ultra-microlight generation and delivery.

Implementation Method 1

a photoelectric surface configured to emit primary electrons based on light or voltage application

Methodology Applied
Scientific EffectPhotoelectric emission: Photoelectric Effect

Implementation Method 2

an electron amplification unit configured to amplify the primary electrons to emit secondary electrons

Methodology Applied
Scientific EffectElectron amplification: Electron Avalanche

Implementation Method 3

a housing which includes an interior space and performs spectroscopy and diffuse reflection on light introduced into the interior space

Methodology Applied
Scientific EffectSpectroscopy: Refraction

Implementation Method 4

a housing which includes an interior space and performs spectroscopy and diffuse reflection on light introduced into the interior space

Methodology Applied
Scientific EffectDiffuse reflection: Reflection

Implementation Method 5

a first filter unit configured to convert the spectroscopic and diffusely reflected light into monochromatic light

Methodology Applied
Scientific EffectOptical filtering: Filter (optical)

Implementation Method 6

a second filter unit configured to cause diffraction and interference for the converted light

Methodology Applied
Scientific EffectDiffraction: Diffraction

Implementation Method 7

a second filter unit configured to cause diffraction and interference for the converted light

Methodology Applied
Scientific EffectInterference: Interference

Data Source

PatentUS12523354B2Ultra-microlight transmission device using secondary electrons
Publication Date: 2026.01.13 BIOLIGHT CORP
  • US12523354B2 patent drawing
  • US12523354B2 patent drawing
  • US12523354B2 patent drawing

AI summary

Provides is an ultra-microlight transmission device using secondary electrons according to various embodiments of the present invention for implementing the above-objects. The ultra-microlight transmission device includes a light source module configured to generate light, a housing which includes an interior space and performs spectroscopy and diffuse reflection on light introduced into the interior space, a first filter unit configured to convert the spectroscopic and diffusely reflected light into monochromatic light, and a second filter unit configured to cause diffraction and interference for the converted light.