Autor: |
Rein, Valentina, Letellier, Florian, Jankowski, Maciej, de Voogd, Marc, Prabhu, Mahesh, Yao, Lipeng, van Baarle, Gertjan, Renaud, Gilles, Saedi, Mehdi, Groot, Irene M. N., Konovalov, Oleg V. |
Rok vydání: |
2024 |
Předmět: |
|
Zdroj: |
Applied Surface Science, 657 (2024) 159723 |
Druh dokumentu: |
Working Paper |
DOI: |
10.1016/j.apsusc.2024.159723 |
Popis: |
Liquid metal catalysts (LMCats), primarily molten copper, have demonstrated their efficiency in the chemical vapour deposition (CVD) approach for synthesising high-quality, large-area graphene. However, their high melting temperatures limit broader applications. Reducing the temperature of graphene production on LMCats would lead to a more efficient and cost-effective process. Here, we investigated the effects of alloying copper with a low-melting temperature metal on graphene growth in real-time. We examined a set of liquid copper-gallium alloy systems using two complementary in situ techniques: radiation-mode optical microscopy and synchrotron X-ray reflectivity (XRR). Microscopy observations revealed reduced catalytic activity and graphene quality degradation in compositions with gallium domination. The XRR confirmed the formation of single-layer graphene on alloys with up to 60 wt% of gallium. Additionally, we detected a systematic increase in adsorption height on the alloys' surface, suggesting a weaker graphene adhesion on gallium. These findings propose a trade-off between layer quality and production cost reduction is feasible. Our results offer insights into the CVD synthesis of graphene on bimetallic liquid surfaces and underscore the potential of gallium-copper alloys for enabling the direct transfer of graphene from a liquid substrate, thereby addressing the limitations imposed by high melting temperatures of conventional LMCats. |
Databáze: |
arXiv |
Externí odkaz: |
|