Paul Alivisatos

Prof. Alivisatos' research concerns the structural, thermodynamic, optical, and electrical properties of colloidal inorganic nanocrystals. He investigates the fundamental physical and chemical properties of nanocrystals and also works to develop practical applications of these new materials in biomedicine and renewable energy.

Nanocrystals: Building Blocks for Solid State Chemistry and Materials Design
 

Nanometer size inorganic crystals are playing an increasingly important role in solid state physics, chemistry, materials science, and even biology. Many fundamental properties of a crystal (e.g., ionization potential, melting point, band gap, saturation magnetization) depend upon the solid being periodic over a particular length scale, typically in the nm regime. By precisely controlling the size and surface of a nanocrystal, its properties can be tuned. Using techniques of molecular assembly, new nanocrystal based materials can in turn be created.

Scaling Laws

As the number of atoms in a cluster increases, there is a critical size above which one particular bonding geometry; characteristic of an extended solid "locks in." As more atoms are added, the total volume and the number of surface atoms change, but the basic nature of the chemical bonds in the cluster does not. In this regime, the properties of nanocrystals vary smoothly, slowly extrapolating to bulk values, according to scaling laws. Many scaling laws have been hypothesized, a few are verified. For instance, the band gap of a semiconductor, such as Si, InAs, or CdSe, all increase with size, roughly as 1/r2, and their melting temperatures all decrease with size, roughly as 1/r, and these observations can be described well theoretically. Other size dependent scaling laws are topics of current research: How long does it take for a crystal to isomerize between two stable bonding geometries? How do the selection rules for absorption and emission of light depend upon the crystal size (translational symmetry)? What is the largest crystal that can be made defect free? In our fundamental studies of nanocrystal physics, we employ a wide range of spectroscopic and structural experimental tools, as well as computer simulation.

Synthesis

The ability to make nanocrystals of high quality (uniform size, no defects except the ones we want, designed surface, etc.) is key to this area of science, and also interesting in its own right. We grow nanocrystals by injecting organometallic precursors into pure, hot surfactants. Some important questions of solid state chemistry can be addressed in the synthesis of nanocrystals. How does nucleation of a solid occur? What governs the rate of growth of a crystal? What is the stress and strain at the interface between a core and a shell of different materials? In addition to fundamental studies of nanocrystal synthesis, we are interested in developing automated, self-correcting nanocrystal syntheses, surface derivitization, and methods for nanocrystal characterization and assembly.

Materials Design Targets

  • Nanocrystal/polymer composites for light emitting diodes and photovoltaics
  • Single nanocrystal-single electron transistor (with P. McEuen, Physics)
  • Nanocrystal/antibody conjugates as biological tag molecules (with S. Weiss, LBNL)
  • DNA directed assembly of nanocrystal patterns (with P. Schultz)
  • Nanocrystal photo-catalysis
  • Mechanical properties of nanocrystal composites

Biosketch

Professor Armand Paul Alivisatos is the University of Chicago's President and John D. MacArthur Distinguished Service Professor in the Department of Chemistry, Pritzker School of Molecular Engineering and the College. He is also the Founding Director of the Kavli Energy Nanoscience Institute (ENSI). In addition, he is a founder of two prominent nanotechnology companies, Nanosys and Quantum Dot Corp, now a part of Life Tech.

Groundbreaking contributions to the fundamental physical chemistry of nanocrystals are the hallmarks of Prof. Alivisatos' distinguished career. His research accomplishments include studies of the scaling laws governing the optical, electrical, structural, and thermodynamic properties of nanocrystals. He developed methods to synthesize size and shape controlled nanocrystals, and developed methods for preparing branched, hollow, nested, and segmented nanocrystals. In his research, he has demonstrated key applications of nanocrystals in biological imaging and renewable energy. He played a critical role in the establishment of the Molecular Foundry, a U.S. Department of Energy's Nanoscale Science Research Center; and was the facility's founding director. He is the founding editor of Nano Letters, a leading scientific publication of the American Chemical Society in nanoscience.

Prof. Alivisatos has been recognized for his accomplishments, with awards such as the Priestley Medal, the Dan David Prize, the National Medal of Science, the Spiers Memorial Award, Axion Award, Wolf Prize in Chemistry, the Von Hippel Award, the Linus Pauling Medal, Computation and Engineering’s Nanoscience Prize, the Ernest Orlando Lawrence Award, the Rank Prize for Optoelectronics, the Eni Award for Energy and Environment, Colloid and Surface Chemistry Award, Coblentz Award for Molecular Spectroscopy and the Thomas Wilson Memorial Prize. He is a member of the National Academy of Sciences, the American Academy of Arts and Sciences and the American Philosophical Society.

Prof. Alivisatos received a Bachelor's degree in Chemistry in 1981 from the University of Chicago and Ph.D. in Chemistry from UC Berkeley in 1986. He began his career with UC Berkeley in 1988 and with Berkeley Lab in 1991. He became President of the University of Chicago in 2021.

The University of Chicago
B.A - Chemistry
1981

University of California, Berkeley
Ph.D. - Physical Chemistry
1986

University of California, Berkeley
Assistant Professor
1993

University of California, Berkeley
Associate Professor
1995

University of California, Berkeley
Professor
1998

University of California, Berkeley
Chancellor's Professor
1998

Lawrence Berkeley National Lab
Associate Laboratory Director
2007

Lawrence Berkeley National Lab
Deputy Lab Director
2008

Lawrence Berkeley National Lab
Director
2015

University of Chicago
President
Present



Priestley Medal
2021

BBVA Foundation Frontiers of Knowledge Award
2020

Welch Award in Chemistry
2019

NAS Award in Chemical Sciences
2017

Dan David Prize for nanoscience research
2016

Axion Award, Hellenic American Professional Society
2015

Spiers Memorial Award, Royal Society of Chemistry
2015

National Medal of Science
2014

ACS Award in the Chemistry of Materials
2014

Wolf Prize in Chemistry
2012

Linus Pauling Award
2011

Von Hippel Award, Materials Research Society
2011

Medaglia teresiana, University of Pavia
2010

Nanoscience Prize, International Society for Nanoscale Science, Computation & Engineering
2009

Kavli Distinguished Lectureship in Nanoscience, Materials Research Society
2008

E. O. Lawrence Award
2006

Eni Italgas prize for Energy and Environment
2006

The Rank Prize (Optoelectronics)
2006

University of Chicago's Distinguished Alumni Award (Professional Achievement)
2006

Colloid and Surface Chemistry American Chemical Society Award
2005

Department of Energy Award for Sustained Outstanding Research in Materials Chemistry
1997

Coblentz Award for Advances in Molecular Spectroscopy
1994

Wilson Prize at Harvard
1994

Department of Energy Award for Outstanding Scientific Accomplishment in Materials Chemistry
1994

Materials Research Society Outstanding Young Investigator Award
1994

Presidential Young Investigator Award
1991 - 1995

Alfred P. Sloan Foundation Fellowship
1991

ACS Exxon Solid State Chemistry Fellowship
1991

Kavli Prize in Nanoscience
2024

University of Chicago President Paul Alivisatos Awarded 2024 Kavli Prize in Nanoscience

Alivisatos Lab creates quantum dots to solve integration challenge

Paul Alivisatos, Chuan He, Wenbin Lin, and Jiwoong Park recognized as Highly Cited Researchers by Clarivate

Big Brains Podcast: Revolutionizing technology at the nanoscale with Paul Alivisatos