Monge Richard, Delord Tom, Meriles Carlos A
Department of Physics, City College of New York, CUNY, New York, NY, USA.
Graduate Center, CUNY, New York, NY, USA.
Nat Nanotechnol. 2024 Feb;19(2):202-207. doi: 10.1038/s41565-023-01542-9. Epub 2023 Dec 4.
Colour centres in wide-bandgap semiconductors feature metastable charge states that can be interconverted with the help of optical excitation at select wavelengths. The distinct fluorescence and spin properties in each of these states have been exploited to show storage of classical information in three dimensions, but the memory capacity of these platforms has been thus far limited by optical diffraction. Here we leverage local heterogeneity in the optical transitions of colour centres in diamond (nitrogen vacancies) to demonstrate selective charge state control of individual point defects sharing the same diffraction-limited volume. Further, we apply this approach to dense colour centre ensembles, and show rewritable, multiplexed data storage with an areal density of 21 Gb inch at cryogenic temperatures. These results highlight the advantages for developing alternative optical storage device concepts that can lead to increased storage capacity and reduced energy consumption per operation.
宽带隙半导体中的色心具有亚稳态电荷态,在特定波长的光激发作用下,这些电荷态可以相互转换。利用这些状态各自独特的荧光和自旋特性,已实现了经典信息在三维空间中的存储,但迄今为止,这些平台的存储容量受到光学衍射的限制。在这里,我们利用金刚石(氮空位)中色心光学跃迁的局部异质性,来展示对共享相同衍射极限体积的单个点缺陷的选择性电荷态控制。此外,我们将此方法应用于密集的色心集合,并展示了在低温下具有21 Gb inch面密度的可重写、多路复用数据存储。这些结果凸显了开发替代光学存储设备概念的优势,这可能会提高存储容量并降低每次操作的能耗。