Robust electrothermal switching of optical phase change materials through computer-aided adaptive pulse optimization (2404.14220v1)
Abstract: Electrically tunable optical devices present diverse functionalities for manipulating electromagnetic waves by leveraging elements capable of reversibly switching between different optical states. This adaptability in adjusting their responses to electromagnetic waves after fabrication is crucial for developing more efficient and compact optical systems for a broad range of applications including sensing, imaging, telecommunications, and data storage. Chalcogenide-based phase change materials (PCMs) have shown great promise due to their stable, non-volatile phase transition between amorphous and crystalline states. Nonetheless, optimizing the switching parameters of PCM devices and maintaining their stable operation over thousands of cycles with minimal variation can be challenging. In this paper, we report on the critical role of PCM pattern as well as electrical pulse form in achieving reliable and stable switching, extending the operational lifetime of the device beyond 13,000 switching events. To achieve this, we have developed a computer-aided algorithm that monitors optical changes in the device and adjusts the applied voltage in accordance with the phase transformation process, thereby significantly enhancing the lifetime of these reconfigurable devices. Our findings reveal that patterned PCM structures show significantly higher endurance compared to blanket PCM thin films.
- Nano Letters 2010.
- Optica 2020, 7, 1 3.
- H. K. Bisoyi, Q. Li, Chemical reviews 2021, 122, 5 4887.
- Nature Communications 2015.
- S. Raoux, Annual Review of Materials Research 2009, 39 25.
- Nature Photonics 2017.
- Nature Communications 2021, 12, 1 774.
- Optical Materials Express 2023, 13, 11 3277.
- Nanophotonics 2020, 9, 11 3505.
- N. Yu, F. Capasso, Nature Materials 2014.
- Nanomaterials 2023, 13, 8 1375.
- Journal of Applied Physics 2021, 129, 15.
- Nature 2019.
- Nature photonics 2017, 11, 7 441.
- Nano Letters 2021.
- Nanomaterials 2018.
- Optica 2020, 7, 7 746.
- arXiv preprint arXiv:2312.10468 2023.
- null 2022.
- Light-Science & Applications 2017.
- arXiv: Applied Physics 2017.
- arXiv: Optics 2017.
- Nature Photonics 2016.
- Advanced Materials 2015.
- M. Wuttig, N. Yamada, Nature Materials 2007.
- Scientific Reports 2016.
- IEEE Electron Device Letters 2004.
- arXiv: Applied Physics 2020.
- T. Singh, R. R. Mansour, IEEE Transactions on Microwave Theory and Techniques 2019, 67, 8 3237.
- ACS Photonics 2014.
- Nature materials 2004, 3, 10 703.
- null 2021.
- Nature Communications 2021, 12, 1 7187.
- Advanced Optical Materials 2018.
- Laser & Photonics Reviews 2016, 10, 6 986.
- Laser & Photonics Reviews 2021, 15, 3 2000373.
- Advanced Materials 2023, 35, 34 2205367.
- D. Tomer, R. A. Coutu, Applied Sciences 2018.
- Small 2023, 19, 50 2304145.
- arXiv preprint arXiv:2307.12103 2023.
- J. Orava, A. L. Greer, Acta Materialia 2017, 139 226.
- Science 2019, 366, 6462 210.
- Small Science 2023, 3, 12 2300098.
- PhotoniX 2022, 3, 1 26.
- In CLEO: Science and Innovations. Optica Publishing Group, 2017 JTh5C–4.
- Nature communications 2019, 10, 1 4279.
- In Photonic and Phononic Properties of Engineered Nanostructures XIII, volume 12431. SPIE, 2023 40–48.