Layered Gallium Monosulfide as Phase‐Change Material for Reconfigurable Nanophotonic Components On‐Chip

Author:

Gutiérrez Yael12,Dicorato Stefano3,Ovvyan Anna P.4,Brückerhoff‐Plückelmann Frank4,Resl Josef5,Giangregorio Maria M3,Hingerl Kurt5,Cobet Christoph5,Schiek Manuela56,Duwe Matthias7,Thiesen Peter H.7,Pernice Wolfram H. P.8,Losurdo Maria1ORCID

Affiliation:

1. Istituto di Chimica della Materia Condensata e delle Tecnologie per l'Energia ICMATE CNR, C.so Stati Uniti 4 Padova 35127 Italy

2. Department of Physics University of Oviedo Oviedo 33007 Spain

3. Institute of Nanotechnology CNR‐NANOTEC via Orabona 4 Bari 70126 Italy

4. Physikalisches Institut Center for Nanotechnology University of Münster Heisenbergstr. 11 48149 Münster Germany

5. Center for Surface and Nanoanalytics (ZONA) Johannes Kepler Universität Linz A‐4040 Austria

6. National Metrology Institute (PTB) Bundesallee 100 D‐38116 Braunschweig Germany

7. Accurion GmbH Stresemannstraße 30 D‐37079 Göttingen Germany

8. Kirchhoff‐Institut for Physics Im Neuenheimer Feld 227 69120 Heidelberg Germany

Abstract

AbstractThe demand for information processing at ultrahigh speed with large data transmission capacity is continuously rising. Necessary building blocks for on‐chip photonic integrated circuits (PICs) are reconfigurable integrated low‐loss high‐speed modulators and switches. Phase change materials (PCMs) provide unique opportunities for integration into PICs. Here, the investigation of layered gallium monosulfide (GaS) as a novel low‐loss PCM from infrared to optical frequencies is pioneered, with high index contrast (Δn ≈0.5) at the optical telecommunication band. The GaS bandgap switches from 1.5 ± 0.2 eV for the amorphous state to 2.1 ± 0.1 eV for the crystalline state. It is demonstrated that the reversible GaS amorphous‐to‐crystalline phase transition can be operated thermally and by picosecond green (532 nm) laser irradiation. The design of a reconfigurable integrated optical modulator on‐chip based on Mach‐Zehnder Interferometers (MZI) with the GaS PCM cell deposited on one of the arms for application is presented at the telecommunication wavelength of λ = 1310 nm, where the standard single mode optical fiber exhibits zero chromatic dispersion, and at λ = 1550 nm, where a minimum optical loss of 0.22 dB km−1 is obtained. This opens the route to applications such as reconfigurable modulators, beam steering using phase modulation, and photonic neural networks.

Publisher

Wiley

Subject

Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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