Electron Injection Enhancement

Electron injection enhancement is the engineering of device interfaces and operating conditions to increase the efficient transfer of electrons into a semiconductor, electrode, or active material, improving electrical performance. It works by reducing injection barriers and limiting carrier loss through strategies such as favorable energy-level alignment, low-resistance contacts, interfacial layers, surface treatment, or controlled electric fields; the appropriate approach depends on the device structure and materials. In electronics and optoelectronics, enhanced injection can lower operating voltage, increase current or light output, and improve response speed and stability. Understanding these mechanisms supports the design of more efficient transistors, light-emitting devices, detectors, and energy-conversion systems.

Electron Injection Enhancement - Related Videos

Research

JoVE EoE - Neurophysiology

Injectable Mesh Electronics for Stable Single-Neuron Recordings in a Mouse Brain

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2025

The video demonstrates the injection of mesh electronics probes into a mouse brain for stable long-term recordings at a single-neuron level. An anesthetized mouse with an exposed skull is secured on a stereotaxic frame, and the probe's mesh device region is injected into the brain through drilled holes. The probe's input-output pads are connected to a circuit, and recordings are obtained using a data acquisition system.

Enhanced Electron Injection and Exciton Confinement for Pure Blue Quantum-Dot Light-Emitting Diodes by Introducing Partially Oxidized Aluminum Cathode

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Cited by 2 •

2018

A protocol is presented for fabricating high-performance, pure blue ZnCdS/ZnS-based quantum dots light-emitting diodes by employing an autoxidized aluminum cathode.

Research

JoVE Journal - Chemistry
Free Sample

Quantitative Atomic-Site Analysis of Functional Dopants/Point Defects in Crystalline Materials by Electron-Channeling-Enhanced Microanalysis

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Cited by 2 •

2021

We provide a general outline of quantitative microanalysis methods for estimating the site occupancies of impurities and their chemical states by taking advantage of electron-channeling phenomena under incident electron beam-rocking conditions, which reliably extract information from minority species, light elements, oxygen vacancies, and other point/line/planar defects.

Syringe-injectable Mesh Electronics for Stable Chronic Rodent Electrophysiology

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Cited by 31 •

2018

Mesh electronics probes seamlessly integrate and provide stable, long-term, single-neuron level recording within the brain. This protocol uses mesh electronics for in vivo experiments, involving the fabrication of mesh electronics, loading into needles, stereotaxic injection, input/output interfacing, recording experiments, and histology of tissue containing mesh probes.

Synthesis and Characterization of Fe-doped Aluminosilicate Nanotubes with Enhanced Electron Conductive Properties

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Cited by 3 •

2016

Here, we present a protocol to synthesize and characterize Fe-doped aluminosilicate nanotubes. The materials are obtained by either sol-gel synthesis upon addition of FeCl3•6H2O to the mixture containing the Si and Al precursors or by post-synthesis ionic exchange of preformed aluminosilicate nanotubes.

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