Home
Scholarly Works
Complex Logic Functions Implemented with Quantum...
Journal article

Complex Logic Functions Implemented with Quantum Dot Bionanophotonic Circuits

Abstract

We combine quantum dots (QDs) with long-lifetime terbium complexes (Tb), a near-IR Alexa Fluor dye (A647), and self-assembling peptides to demonstrate combinatorial and sequential bionanophotonic logic devices that function by time-gated Förster resonance energy transfer (FRET). Upon excitation, the Tb-QD-A647 FRET-complex produces time-dependent photoluminescent signatures from multi-FRET pathways enabled by the capacitor-like behavior of the Tb. The unique photoluminescent signatures are manipulated by ratiometrically varying dye/Tb inputs and collection time. Fluorescent output is converted into Boolean logic states to create complex arithmetic circuits including the half-adder/half-subtractor, 2:1 multiplexer/1:2 demultiplexer, and a 3-digit, 16-combination keypad lock.

Authors

Claussen JC; Hildebrandt N; Susumu K; Ancona MG; Medintz IL

Journal

ACS Applied Materials & Interfaces, Vol. 6, No. 6, pp. 3771–3778

Publisher

American Chemical Society (ACS)

Publication Date

March 26, 2014

DOI

10.1021/am404659f

ISSN

1944-8244

View published work (Non-McMaster Users)