| Literature DB >> 27676459 |
Zhaoli Gao1, Hojin Kang2, Carl H Naylor, Frank Streller, Pedro Ducos, Madeline D Serrano, Jinglei Ping, Jonathan Zauberman, Robert W Carpick, Ying-Jun Wang3, Yung Woo Park2, Zhengtang Luo1, Li Ren3, A T Charlie Johnson.
Abstract
We have developed a scalable fabrication process for the production of DNA biosensors based on gold nanoparticle-decorated graphene field effect transistors (AuNP-Gr-FETs), where monodisperse AuNPs are created through physical vapor deposition followed by thermal annealing. The FETs are created in a four-probe configuration, using an optimized bilayer photolithography process that yields chemically clean devices, as confirmed by XPS and AFM, with high carrier mobility (3590 ± 710 cm2/V·s) and low unintended doping (Dirac voltages of 9.4 ± 2.7 V). The AuNP-Gr-FETs were readily functionalized with thiolated probe DNA to yield DNA biosensors with a detection limit of 1 nM and high specificity against noncomplementary DNA. Our work provides a pathway toward the scalable fabrication of high-performance AuNP-Gr-FET devices for label-free nucleic acid testing in a realistic clinical setting.Entities:
Keywords: DNA biosensor; bilayer photolithography process; gold nanoparticles; graphene; scalable fabrication
Year: 2016 PMID: 27676459 DOI: 10.1021/acsami.6b09238
Source DB: PubMed Journal: ACS Appl Mater Interfaces ISSN: 1944-8244 Impact factor: 9.229