A single theory of matter must explain everything from the behaviour of electrons in a computer chip to the way stem cells organise into tissue. The Cambridge Theory of Condensed Matter group is building that theory, using a three-tiered approach that moves from precise atomic-scale calculations through simplified models to broad, coarse-grained descriptions of how large systems behave. This is fundamental science: the goal is to understand how microscopic parts—whether electrons, atoms, or cells—give rise to the macroscopic properties we actually see and use. The group works across three themes: living tissue and programmable soft matter, where models of growth and form could eventually guide tissue engineering; first-principles calculations of electronic and vibrational states in complex materials, which will underpin computational biology and designer materials; and many-body localisation in quantum systems, essential for understanding non-equilibrium dynamics in future quantum devices. There is no immediate practical application. But condensed matter theory has a long track record of enabling technologies—transistors, lasers, magnetic resonance imaging—that began as abstract descriptions of how matter organises itself.
View original technical description
Describing the emergence of macroscopic behaviour from microscopic constituents is the central goal of condensed matter physics. Whether those constituents are electrons in a solid, atoms in a gas, or cells in tissue, the inherent complexity of this task calls for a three-pronged approach involving (1) realistic first principles calculations capable of numerical precision, (2) simplified models describing the transition to the macroscopic limit and (3) coarse-grained descriptions of that limit. As described in this proposal, the Theory of Condensed Matter group pursues an integrated program of research in which this approach is applied to systems spanning quantum, soft, and living matter. These systems - including stem cells, pigment-protein complexes, and semiconductor-superconductor devices - are of fundamental scientific and technological importance, and their understanding may in time yield new therapies, opto-mechanical devices, solar cells, or computers. They are grouped into three themes: The description of growth and form in living tissue and in programmable soft matter will be pursued by Profs Ben Simons and Mark Warner using both simplified microscopic models and continuum descriptions, in close contact with diverse experimental groups in Cambridge, USA, Holland and elsewhere. The first principles investigations proposed by Profs Richard Needs and Mike Payne will establish all-purpose tools for the accurate calculation of the properties of both electronic and vibrational excited states in extremely large and complex systems. Such quantitative advances will prove invaluable for computational biology and designer materials. The study of many body localisation is essential to understanding the non-equilibrium dynamics of large quantum systems. Prof Nigel Cooper and Drs Claudio Castelnovo and Austen Lamacraft will target experimentally realistic models of quantum devices and magnetic materials in close collaboration with project partners at Cornell and the Niels Bohr Institute, as well as more tractable model systems where more controlled calculations are possible.
Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.
Is something wrong? Let us know