Publications

Scalable Force Fields for Metal-Mediated DNA Nanostructures

2026
William Livernois, Olaiyan Alolaiyan, Arpan De, and M. P. Anantram
Journal of Chemical Theory and Computation (American Chemical Society (ACS))
Vol. 22, Issue 4, pp. 2000-2012

Scalable Force Fields for Metal-Mediated DNA Nanostructures

2026
William Livernois, Olaiyan Alolaiyan, Arpan De, and M. P. Anantram
(American Chemical Society (ACS))
preprint

Topology-Enforced Synthesis of Atomically-Precise Silver Nanoclusters in 3D DNA Lattices

2025
Lara Perren, Will Livernois, Karol Woloszyn, Jordan Janowski, Laibah Faiaz, Vidya R. Singh, Mara Jaffe, Chengde Mao, James W. Canary, Yoel P. Ohayon, Ruojie Sha, M.P. Anantram, and Simon Vecchioni
(American Chemical Society (ACS))
preprint

Transmetalation for DNA‐Based Molecular Electronics

2025
Arpan De, Brandon Lu, Yoel P. Ohayon, Karol Woloszyn, William Livernois, Lara Perren, Chu‐fan Yang, Chengde Mao, Antia S. Botana, Joshua Hihath, James W. Canary, Ruojie Sha, M.P. Anantram, and Simon Vecchioni
Small (Wiley)
Vol. 21, Issue 25
The rational design of molecular electronics remains a grand challenge of materials science. DNA nanotechnology has offered unmatched control over molecular geometry, but direct electronic functionalization is a challenge. Here a generalized method is presented for tuning the local band structure of DNA using transmetalation in metal‐mediated base pairs (mmDNA). A method is developed for time‐resolved X‐ray diffraction using self‐assembling DNA crystals to establish the exchange of Ag +  and Hg 2+  in T:T base pairs driven by pH exchange. Transmetalation is tracked over six reaction phases as crystal pH is changed from pH 8.0 to 11.0, and vice versa. A detailed computational analysis of the electronic configuration and transmission in the ensuing crystal structures is then performed. This findings reveal a high conductance contrast in the lowest unoccupied molecular orbitals (LUMO) as a result of metalation. The ability to exchange single transition metal ions as a result of environmental stimuli heralds a means of modulating the conductance of DNA‐based molecular electronics. In this way, both theoretical and experimental basis are established by which mmDNA can be leveraged to build rewritable memory devices and nanoelectronics.

Ion detection in a DNA nanopore FET device

2024
Nanotechnology

Metal‐Mediated DNA Nanotechnology in 3D: Structural Library by Templated Diffraction

2023
Advanced Materials

A Spin-Dependent Model for Multi-Heme Bacterial Nanowires

2023
William Livernois and M. P. Anantram
ACS Nano (American Chemical Society (ACS))
Vol. 17, Issue 10, pp. 9059-9068

Quantum Transport in Conductive Bacterial Nanowires

2021
William Livernois and M. P. Anantram
2021 IEEE 16th Nanotechnology Materials and Devices Conference (NMDC) (IEEE)
pp. 1-5
conference paper

The effects of iCVD film thickness and conformality on the permeability and wetting of MD membranes

2017
Journal of Membrane Science

Scale-up of oCVD: large-area conductive polymer thin films for next-generation electronics

2015
Peter Kovacik, Gabriella del Hierro, William Livernois, and Karen K. Gleason
Materials Horizons (Royal Society of Chemistry (RSC))
Vol. 2, Issue 2, pp. 221-227

We demonstrate large-area conductive polymer films using oxidative chemical vapor deposition and apply them to low-cost and durable conductive textiles.