ZnO quantum dot–molecule conjugates: Chemical interactions, charge dynamics, and spin polarization

F Frida S. Hernandez (Department of Chemistry, Amherst College 1 , Amherst, Massachusetts 01002,) A Autumn Y. Lee (Department of Chemistry, Amherst College 1 , Amherst, Massachusetts 01002,) A Amisha Jain (Department of Chemistry, Amherst College 1 , Amherst, Massachusetts 01002,) M Mandefro Teferi (Chemical Sciences and Engineering Division, Argonne National Laboratory 2 , Lemont, Illinois 60439,) T Troy A. Colleran (Department of Chemistry, Amherst College 1 , Amherst, Massachusetts 01002,) T Tomoyasu Mani (Department of Chemistry) H Harsh Bhatia H Hannah J. Sayre (Department of Chemistry and Chemical Biology and Department of Chemical Engineering, Northeastern University 4 , Boston, Massachusetts 02115,) J Jens Niklas (Chemical Sciences and Engineering Division) O Oleg G. Poluektov (Chemical Sciences and Engineering Division) J Jacob H. Olshansky (Department of Chemistry, Amherst College 1 , Amherst, Massachusetts 01002,)

Abstract

Conjugates between molecules and quantum dots (QDs) have been explored for a range of potential applications from photocatalysis and photovoltaics to quantum information science technologies. A particularly ubiquitous material in many of these applications are ZnO QDs since they can accept and transport electrons and can also act as hosts for unique spin states. Conjugates between molecular light absorbers and ZnO QDs have been explored for decades as components in dye-sensitized solar cells. Recently, these materials have also attracted interest for their ability to produce spin-polarized states upon photoexcitation. The current paper employs a series of light absorbing perylene molecules with different ZnO QD sizes to explore key features of these QD–molecule conjugates: (1) chemical interactions, (2) charge dynamics, and (3) spin polarization. The chemical interactions between the molecules and QDs are determined with binding equilibria and reveal dramatic impact of ligand size. The charge transfer dynamics from photoexcited perylenes to ZnO QDs were found to depend exponentially on the linker length. Finally, time-resolved electron paramagnetic resonance experiments reveal that these conjugates generate spin-polarized states in the form of radical pairs and triplets. These spin states hold promise as potential qubits and also offer an avenue to efficiently sensitize molecular triplets.

Article Details

Volume / Issue Vol. 163, Issue 21
Published December 07, 2025
ISSN 0021-9606
Publisher American Institute of Physics

Journal Info

The Journal of Chemical Physics

American Institute of Physics

ISSN: 0021-9606 Physical Sciences

Authors (11)

F

Frida S. Hernandez

Department of Chemistry, Amherst College 1 , Amherst, Massachusetts 01002,

A

Autumn Y. Lee

Department of Chemistry, Amherst College 1 , Amherst, Massachusetts 01002,

A

Amisha Jain

Department of Chemistry, Amherst College 1 , Amherst, Massachusetts 01002,

M

Mandefro Teferi

Chemical Sciences and Engineering Division, Argonne National Laboratory 2 , Lemont, Illinois 60439,

T

Troy A. Colleran

Department of Chemistry, Amherst College 1 , Amherst, Massachusetts 01002,

T

Tomoyasu Mani

Department of Chemistry

H

Harsh Bhatia

H

Hannah J. Sayre

Department of Chemistry and Chemical Biology and Department of Chemical Engineering, Northeastern University 4 , Boston, Massachusetts 02115,

J

Jens Niklas

Chemical Sciences and Engineering Division

O

Oleg G. Poluektov

Chemical Sciences and Engineering Division

J

Jacob H. Olshansky

Department of Chemistry, Amherst College 1 , Amherst, Massachusetts 01002,