Micron School of Materials Science & Engineering , Boise State University , Boise , Idaho 83725 , United States.
Institute of Pharmacy and Molecular Biotechnology , Heidelberg University , 69120 Heidelberg , Germany.
ACS Nano. 2019 Mar 26;13(3):2986-2994. doi: 10.1021/acsnano.8b07504. Epub 2019 Feb 20.
The excitonic circuitry found in photosynthetic organisms suggests an alternative to electronic circuits, but the assembly of optically active molecules to fabricate even simple excitonic devices has been hampered by the limited availability of suitable molecular scale assembly technologies. Here we have designed and operated a hybrid all-optical excitonic switch comprised of donor/acceptor chromophores and photochromic nucleotide modulators assembled with nanometer scale precision using DNA nanotechnology. The all-optical excitonic switch was operated successfully in both liquid and solid phases, exhibiting high ON/OFF switching contrast with no apparent cyclic fatigue through nearly 200 cycles. These findings, combined with the switch's small footprint and volume, estimated low energy requirement, and potential ability to switch at speeds in the 10s of picoseconds, establish a prospective pathway forward for all-optical excitonic circuits.
在光合作用生物中发现的激子电路为电子电路提供了一种替代方案,但由于合适的分子尺度组装技术的有限可用性,将光学活性分子组装成甚至简单的激子器件一直受到阻碍。在这里,我们使用 DNA 纳米技术设计并操作了一种由供体/受体发色团和光致变色核苷酸调节剂组成的混合全光激子开关,其组装精度达到纳米级。全光激子开关在液体和固体相中均成功运行,在近 200 个循环中表现出高的 ON/OFF 开关对比度,且无明显的循环疲劳。这些发现,结合开关的小尺寸和体积、低能量需求的估计以及在数十皮秒内切换的潜在能力,为全光激子电路建立了一个有前景的前进途径。