Amanote Research
Register
Sign In
Rational Design of a Carbon‐Boron Frustrated Lewis Pair for Metal‐free Dinitrogen Activation
Chemistry - An Asian Journal
- Germany
doi 10.1002/asia.201900327
Full Text
Open PDF
Abstract
Available in
full text
Categories
Organic Chemistry
Biochemistry
Chemistry
Date
April 11, 2019
Authors
Jun Zhu
Publisher
Wiley
Related search
Reversible Metal-Free Carbon Dioxide Binding by Frustrated Lewis Pairs
Angewandte Chemie - International Edition
Catalysis
Chemistry
Frustrated Lewis Pair Chemistry Meets Metal-Organic Frameworks
Chem
Biochemistry
Environmental Chemistry
Materials Chemistry
Chemistry
Chemical Engineering
Design Principles in Frustrated Lewis Pair Catalysis for the Functionalization of Carbon Dioxide and Heterocycles
Coordination Chemistry Reviews
Inorganic Chemistry
Materials Chemistry
Theoretical Chemistry
Physical
Bimetallic Cooperative Cleavage of Dinitrogen to Nitride and Tandem Frustrated Lewis Pair Hydrogenation to Ammonia
Angewandte Chemie
Bimetallic Cooperative Cleavage of Dinitrogen to Nitride and Tandem Frustrated Lewis Pair Hydrogenation to Ammonia
Angewandte Chemie - International Edition
Catalysis
Chemistry
Group 6 Transition Metal/Boron Frustrated Lewis Pair Templates Activate N2 and Allow Its Facile Borylation and Silylation
Angewandte Chemie - International Edition
Catalysis
Chemistry
Group 6 Transition Metal/Boron Frustrated Lewis Pair Templates Activate N2 and Allow Its Facile Borylation and Silylation
Angewandte Chemie
Dinitrogen Activation: Dinitrogen Activation by Tricoordinated Boron Species: A Systematic Design (Adv. Theory Simul. 3/2020)
Advanced Theory and Simulations
Numerical Analysis
Statistics
Probability
Multidisciplinary
Simulation
Modeling
Rational Design of Carbon-Based Metal-Free Catalysts for Electrochemical Carbon Dioxide Reduction: A Review
Journal of Energy Chemistry
Energy
Power Technology
Fuel Technology
Electrochemistry
Energy Engineering