Electrostatic catalysis of a Diels-Alder reaction

被引:637
作者
Aragones, Albert C. [1 ,2 ,3 ]
Haworth, Naomi L. [4 ]
Darwish, Nadim [1 ,2 ]
Ciampi, Simone [5 ]
Bloomfield, Nathaniel J. [4 ]
Wallace, Gordon G. [5 ]
Diez-Perez, Ismael [1 ,2 ,3 ]
Coote, Michelle L. [4 ]
机构
[1] Univ Barcelona, Dept Quim Fis, Diagonal 645, E-08028 Barcelona, Catalonia, Spain
[2] Inst Bioengn Catalunya IBEC, Baldiri Reixac 15-21, Barcelona 08028, Catalonia, Spain
[3] Ctr Invest Biomed Red CIBER BBN, Campus Rio Ebro Edificio I D, Zaragoza 50018, Spain
[4] Australian Natl Univ, Res Sch Chem, ARC Ctr Excellence Electromat Sci, Canberra, ACT 2601, Australia
[5] Univ Wollongong, Intelligent Polymer Res Inst, ARC Ctr Excellence Electromat Sci, Wollongong, NSW 2500, Australia
基金
澳大利亚研究理事会;
关键词
DISTONIC RADICAL-ANIONS; EXTERNAL ELECTRIC-FIELD; SOMO-HOMO CONVERSION; NORBORNYLOGOUS BRIDGES; MOLECULAR JUNCTIONS; VALENCE-BOND; SELECTIVITY; RULERS;
D O I
10.1038/nature16989
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
It is often thought that the ability to control reaction rates with an applied electrical potential gradient is unique to redox systems. However, recent theoretical studies suggest that oriented electric fields could affect the outcomes of a range of chemical reactions, regardless of whether a redox system is involved(1-4). This possibility arises because many formally covalent species can be stabilized via minor charge-separated resonance contributors. When an applied electric field is aligned in such a way as to electrostatically stabilize one of these minor forms, the degree of resonance increases, resulting in the overall stabilization of the molecule or transition state. This means that it should be possible to manipulate the kinetics and thermodynamics of non-redox processes using an external electric field, as long as the orientation of the approaching reactants with respect to the field stimulus can be controlled. Here, we provide experimental evidence that the formation of carboncarbon bonds is accelerated by an electric field. We have designed a surface model system to probe the Diels-Alder reaction, and coupled it with a scanning tunnelling microscopy break-junction approach(5-7). This technique, performed at the single-molecule level, is perfectly suited to deliver an electric-field stimulus across approaching reactants. We find a fivefold increase in the frequency of formation of single-molecule junctions, resulting from the reaction that occurs when the electric field is present and aligned so as to favour electron flow from the dienophile to the diene. Our results are qualitatively consistent with those predicted by quantum-chemical calculations in a theoretical model of this system, and herald a new approach to chemical catalysis.
引用
收藏
页码:88 / 91
页数:4
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