Gold Connector Pins

Gold connector pins are conductive contact components that create reliable, detachable electrical connections between cables, circuit boards, sensors, and instruments. Their gold-plated surfaces maintain low-resistance contact and resist oxidation and corrosion, while the spring-loaded or precisely aligned pin structure preserves electrical continuity through repeated mating cycles. In neuroscience, these connectors link recording electrodes, stimulation interfaces, headstages, and data-acquisition equipment, allowing weak neural signals to travel from experimental preparations to amplifiers and processors. Their durability and stable conductivity support reproducible electrophysiology, including brain-computer interface research, chronic neural recordings, and other systems where connection failure or signal loss can compromise results.

Gold Connector Pins - Related Videos

Research

JoVE Journal - Neuroscience

Gold Nanorod-assisted Optical Stimulation of Neuronal Cells

0 Views •

Cited by 9 •

2015

This protocol outlines how to use the transient heating associated with the optical absorption of gold nanorods to stimulate differentiation and intracellular calcium activity in neuronal cells. These results potentially open up new applications in neural prostheses and fundamental studies in neuroscience.

Stimulating Neuronal Cell Differentiation Using Gold Nanorods

0 Views •

2025

This video demonstrates a technique to promote neuronal differentiation by exposing nerve cells to gold nanorods and laser light, which forms cell projections supported by the βIII-tubulin. Staining and observing tubulin and the cell nucleus with epifluorescence microscopy reveals the cell outgrowths, indicating the nanorods' efficacy in neuronal differentiation.

Education

JoVE Core - Mechanical Engineering

Euler's Formula for Pin-Ended Columns

0 Views •

2024

In structural engineering, the stability of columns under compressive axial loads is a critical consideration, described as buckling. A typical example involves a column PQ, which is pin-connected at both ends and subjected to a centric axial load F applied at one end, with a reaction force of F' = -F at the other end. Here, it is crucial to understand that when an applied load exceeds the critical load, buckling occurs as the system becomes unstable. To calculate the critical load, envision...

Fabrication of Periodic Gold Nanocup Arrays Using Colloidal Lithography

0 Views •

Cited by 1 •

2017

We demonstrate the fabrication of periodic gold nanocup arrays using colloidal lithographic techniques and discuss the importance of nanoplasmonic films.

Transverse Fracture of the Mouse Femur with Stabilizing Pin

0 Views •

Cited by 3 •

2021

This protocol describes a method to perform fractures on adult mice and monitor the healing process.

View All Results

FAQs

Related Topics