Information processing currently reaches speeds as high as 800 GHz. However, the underlying transistor technology is quickly approaching its fundamental limits and further progress requires a disruptive approach. One such path is to manipulate quantum properties of solids, such as the valley degree of freedom, with ultrashort controlled lightwaves. Here we employ a sequence of few-optical-cycle visible pulses controlled with attosecond precision to excite and switch the valley pseudospin in a 2D semiconductor. We show that a pair of pulses separated in time with linear orthogonal polarizations can induce a valley-selective population. Additionally, exploiting a four-pump excitation protocol, we perform logic operations such as valley de-excitation and re-excitation at room temperature at rates as high as ~10 THz.
@article{arxiv.2412.08318,
title = {Ultrafast valleytronic logic operations},
author = {Francesco Gucci and Eduardo B. Molinero and Mattia Russo and Pablo San-Jose and Franco V. A. Camargo and Margherita Maiuri and Misha Ivanov and Álvaro Jiménez-Galán and Rui E. F. Silva and Stefano Dal Conte and Giulio Cerullo},
journal= {arXiv preprint arXiv:2412.08318},
year = {2024}
}