A proton is a subatomic particle found in the nucleus of an atom. It has a positive electric charge of +1e (approximately +1.602 x 10^-19 coulombs) and a relative mass of about 1 atomic mass unit (amu), which is roughly 1836 times the mass of an electron. Protons, along with neutrons (which are neutral particles), make up the nucleus of an atom, while electrons orbit the nucleus.
High Temperature Proton Exchange Membrane (HT-PEM) fuel cells are a type of fuel cell that operates at elevated temperatures, typically between 120°C to 200°C. They utilize a proton exchange membrane (PEM) that allows protons (hydrogen ions) to pass through while being impermeable to gases like hydrogen and oxygen. Here are some key features and advantages of HT-PEM fuel cells: ### Key Features 1.
In chemistry, "hydron" refers to the cation of hydrogen (H⁺). It represents a hydrogen atom that has lost its electron, resulting in a positively charged ion. This ion is fundamental in various chemical reactions, especially those involving acids and bases. In aqueous solutions, hydron interacts with water molecules to form hydronium ions (H₃O⁺), which are often what is actually present in solutions where H⁺ is discussed.
A Proton Exchange Membrane Fuel Cell (PEMFC) is a type of fuel cell that generates electricity through a chemical reaction between hydrogen and oxygen. It uses a proton-conducting polymer membrane as the electrolyte, which allows protons (hydrogen ions) to pass through while blocking electrons.
The proton-to-electron mass ratio is a dimensionless quantity that expresses the mass of a proton in terms of the mass of an electron. Its value is approximately: \[ \frac{m_p}{m_e} \approx 1836.15267389 \] This means that a proton is about 1836 times more massive than an electron. This ratio is fundamental in physics, playing a crucial role in various areas, including atomic physics, particle physics, and cosmology.
Proton-transfer-reaction mass spectrometry (PTR-MS) is a highly sensitive and selective analytical technique used primarily for the real-time detection and quantification of volatile organic compounds (VOCs) in gas phase samples. The method is particularly valuable in fields such as environmental monitoring, atmospheric chemistry, and biomedical applications.
A proton pump is a type of protein found in the membranes of cells that plays a crucial role in transporting protons (H⁺ ions) across that membrane. Proton pumps are essential for various cellular processes, including: 1. **Maintaining pH**: By controlling the concentration of hydrogen ions, proton pumps help maintain the acidity or alkalinity of different cellular compartments and the extracellular environment.
The "proton radius puzzle" refers to a discrepancy in the measured size of the proton, a fundamental particle found in atomic nuclei. Traditionally, the proton radius has been measured using different experimental techniques, leading to conflicting results. 1. **Electron-Proton Scattering**: Historically, the radius of the proton was determined through experiments involving scattering electrons off protons. This method yielded a value of approximately 0.8768 femtometers (fm).
Protonium is a hypothetical exotic atom that consists of a proton and its antiparticle, the antiproton. In this configuration, the two particles are bound together by their mutual electromagnetic attraction, similar to how electrons are bound to protons in ordinary hydrogen atoms. The primary difference is that while hydrogen contains a proton and an electron, protonium contains a proton and an antiproton.
A protonophore is a type of chemical compound that facilitates the transport of protons (H⁺ ions) across biological membranes. These compounds can disrupt the normal proton gradient across membranes, which is vital for the production of ATP in cellular respiration and photosynthesis. By allowing protons to move freely across membranes, protonophores can uncouple the process of oxidative phosphorylation from the electron transport chain.

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Proton by Ciro Santilli 37 Updated +Created