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Radical Substitution: Hydrogenolysis of Alkyl Halides with Tributyltin Hydride01:26

Radical Substitution: Hydrogenolysis of Alkyl Halides with Tributyltin Hydride

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Radical substitution reactions can be used to remove functional groups from molecules. The hydrogenolysis of alkyl halides is one such reaction, where the weak Sn–H bond in tributyltin hydride reacts with alkyl halides to form alkanes. Here, the reagent Bu3SnH yields tributyltin halide as a byproduct.
The bonds formed in this reaction are stronger than the bonds broken, making it energetically favorable. The reaction follows a radical chain mechanism similar to radical halogenation...
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Reduction of Alkenes: Catalytic Hydrogenation02:13

Reduction of Alkenes: Catalytic Hydrogenation

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Alkenes undergo reduction by the addition of molecular hydrogen to give alkanes. Because the process generally occurs in the presence of a transition-metal catalyst, the reaction is called catalytic hydrogenation.
Metals like palladium, platinum, and nickel are commonly used in their solid forms — fine powder on an inert surface. As these catalysts remain insoluble in the reaction mixture, they are referred to as heterogeneous catalysts.
The hydrogenation process takes place on the...
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Reduction of Alkenes: Asymmetric Catalytic Hydrogenation02:17

Reduction of Alkenes: Asymmetric Catalytic Hydrogenation

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Catalytic hydrogenation of alkenes is a transition-metal catalyzed reduction of the double bond using molecular hydrogen to give alkanes. The mode of hydrogen addition follows syn stereochemistry.
The metal catalyst used can be either heterogeneous or homogeneous. When hydrogenation of an alkene generates a chiral center, a pair of enantiomeric products is expected to form. However, an enantiomeric excess of one of the products can be facilitated using an enantioselective reaction or an...
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Reduction of Alkynes to cis-Alkenes: Catalytic Hydrogenation02:24

Reduction of Alkynes to cis-Alkenes: Catalytic Hydrogenation

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Introduction
Like alkenes, alkynes can be reduced to alkanes in the presence of transition metal catalysts such as Pt, Pd, or Ni. The reaction involves two sequential syn additions of hydrogen via a cis-alkene intermediate.
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Catalysis02:50

Catalysis

26.8K
The presence of a catalyst affects the rate of a chemical reaction. A catalyst is a substance that can increase the reaction rate without being consumed during the process. A basic comprehension of a catalysts’ role during chemical reactions can be understood from the concept of reaction mechanisms and energy diagrams.
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Radical Reactivity: Concentration Effects01:20

Radical Reactivity: Concentration Effects

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In a radical reaction, the concentration of starting materials governs the selectivity of a radical. For example, the reaction between an alkyl halide and an alkene, in the presence of tin hydride and AIBN, begins with the generation of a tin radical. The generated radical then abstracts halogen from the alkyl halide, producing an alkyl radical. This alkyl radical can either react with tin hydride, yielding an alkane, or add to an alkene, generating a nitrile-stabilized radical, eventually...
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Updated: Jun 18, 2025

A Simple, Low-cost, and Robust System to Measure the Volume of Hydrogen Evolved by Chemical Reactions with Aqueous Solutions
06:32

A Simple, Low-cost, and Robust System to Measure the Volume of Hydrogen Evolved by Chemical Reactions with Aqueous Solutions

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Rationally designed Ru catalysts supported on TiN for highly efficient and stable hydrogen evolution in alkaline

Jia Zhao1,2,3, Ricardo Urrego-Ortiz4,5, Nan Liao1,2,3

  • 1Institute of Photoelectronic Thin Film Devices and Technology, State Key Laboratory of Photovoltaic Materials and Cells, Tianjin Key Laboratory of Efficient Solar Energy Utilization, Ministry of Education Engineering Research Center of Thin Film Photoelectronic Technology, Nankai University, Tianjin, China.

Nature Communications
|July 30, 2024
PubMed
Summary

This study developed Ruthenium nanoparticle catalysts on TiN for efficient hydrogen evolution. These catalysts demonstrate high activity and stability for clean hydrogen production via water splitting.

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Catalytic Reactions at Amine-Stabilized and Ligand-Free Platinum Nanoparticles Supported on Titania During Hydrogenation of Alkenes and Aldehydes
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Area of Science:

  • Materials Science
  • Electrochemistry
  • Catalysis

Background:

  • Electrocatalysis is crucial for efficient and cost-effective water splitting.
  • Hydrogen is a key sustainable energy carrier.
  • Developing advanced catalysts is essential for improving water splitting devices.

Purpose of the Study:

  • To rationally design Ruthenium nanoparticle catalysts supported on TiN (Ru NPs/TiN).
  • To investigate their performance for the hydrogen evolution reaction in alkaline conditions.
  • To understand the role of particle-support interactions in catalyst performance.

Main Methods:

  • Synthesis and characterization of Ru NPs/TiN catalysts.
  • Electrochemical testing for hydrogen evolution reaction (HER) activity and stability.
  • Density functional theory (DFT) calculations to probe particle-support interactions and adsorption energies.
  • Assembly and testing of an anion exchange membrane electrolyzer.

Main Results:

  • Ru NPs/TiN catalysts achieved a mass activity of 20 A mg-1Ru at 63 mV overpotential.
  • Catalysts exhibited excellent long-term stability, exceeding commercial electrolyzer benchmarks.
  • DFT calculations confirmed strong Ru-TiN adhesion and favorable hydrogen adsorption modulation.
  • An anion exchange membrane electrolyzer with Ru NPs/TiN operated at 5 A cm-2 for over 1000 hours with minimal degradation.

Conclusions:

  • The TiN substrate effectively modifies Ru nanoparticle properties.
  • Particle-support interactions are key to enhancing HER performance.
  • Ru NPs/TiN catalysts represent a significant advancement for efficient water splitting and hydrogen production.