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Martin Peeks


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Dr. Matthew D. Peeks is a distinguished researcher in the field of molecular and supramolecular chemistry, with a particular focus on the study of aromaticity, antiaromaticity, and electronic delocalization in complex molecular systems. His work has significantly advanced the understanding of ring currents and their role in the electronic properties of molecular nanorings and nanowires, particularly those composed of porphyrin units. Dr. Peeks has made groundbreaking contributions to the field through the use of advanced spectroscopic techniques, including electron paramagnetic resonance (EPR), magnetic circular dichroism (MCD), and nuclear magnetic resonance (NMR), to probe the electronic structure and dynamics of these systems. His research has not only deepened the theoretical understanding of aromaticity and antiaromaticity but has also had practical implications in the development of new materials with tailored electronic and optical properties. Dr. Peeks has published extensively in high-impact journals such as *Nature*, *Angewandte Chemie*, *Journal of the American Chemical Society*, and *Chem*, and has been recognized for his innovative approaches and impactful discoveries. His work continues to inspire new directions in the study of molecular electronics and nanoscale materials.


Scholar profile summary
Scholar-generated biography

Martin D. Peeks is a researcher in Physical Organic Chemistry, focusing on the electronic and magnetic properties of conjugated systems. His work explores aromaticity, antiaromaticity, and delocalization in molecular nanorings, porphyrin oligomers, and conjugated polymers. He investigates phenomena such as ring currents, triplet state delocalization, and quantum interference effects. His research also includes the synthesis of nanoscale structures like porphyrin nanorings and conjugated radical polymers, with applications in optoelectronics and materials science. Peeks' studies combine experimental and computational methods to understand the behavior of π-conjugated systems and their potential for advanced functional materials.

Source: google_scholar · 93 words
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