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Organic supramolecular chemistry: A Research programme of synthetic molecular motors and machines
Leigh, David
(Principal Investigator)
School of Chemistry
Overview
Fingerprint
Research output
(4)
Project Details
Status
Finished
Effective start/end date
1/01/10
→
30/12/14
Funding
EPSRC:
£3,197,623.00
View all
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Fingerprint
Explore the research topics touched on by this project. These labels are generated based on the underlying awards/grants. Together they form a unique fingerprint.
DNA
Engineering & Materials Science
100%
Fuel
Chemical Compounds
79%
Coulomb interactions
Engineering & Materials Science
76%
Nanopores
Engineering & Materials Science
71%
Isotopes
Engineering & Materials Science
59%
Chemical Potential
Chemical Compounds
54%
Electrostatics
Engineering & Materials Science
51%
Isotope Effect
Chemical Compounds
49%
Research output
Research output per year
2015
2015
2016
2020
2020
4
Article
Research output per year
Research output per year
Reconciling Electrostatic and n→π* Orbital Contributions in Carbonyl Interactions
Muchowska, K.
,
Pascoe, D.
,
Borsley, S.
,
Smolyar, I.
,
Mati, I.
,
Adam, C.
,
Nichol, G.
,
Ling, K.
&
Cockroft, S. L.
,
2 Jun 2020
, (E-pub ahead of print)
In:
Angewandte Chemie International Edition.
Research output
:
Contribution to journal
›
Article
›
peer-review
Open Access
File
Coulomb interactions
100%
Electrostatics
66%
Orbital
52%
Polarization
28%
Protein Structure
15%
Man-made molecular machines: membrane bound
Watson, M.
&
Cockroft, S.
,
2 Mar 2016
, (E-pub ahead of print)
In:
Chemical Society Reviews.
Research output
:
Contribution to journal
›
Article
›
peer-review
Open Access
File
Fuel
100%
Environment
69%
Surface
38%
An autonomously reciprocating transmembrane nanoactuator
Watson, M.
&
Cockroft, S.
,
22 Jan 2016
,
In:
Angewandte Chemie International Edition.
55
,
4
,
p. 1345-1349
Research output
:
Contribution to journal
›
Article
›
peer-review
Open Access
File
Chemical Potential
100%
DNA
92%
Enzymatic Reaction
90%
Fuel
73%
Displacement
72%