Prospective Life Cycle Assessment of Epitaxial Graphene Production at Different Manufacturing Scales and Maturity

被引:37
作者
Arvidsson, Rickard [1 ]
Molander, Sverker [1 ]
机构
[1] Chalmers Univ Technol, Div Environm Syst Anal, Gothenburg, Sweden
基金
瑞典研究理事会;
关键词
energy consumption; epitaxial growth; industrial ecology; LCA; nanomaterial; silicon carbide; GREENHOUSE-GAS EMISSIONS; LAND-USE CHANGE; CONSEQUENTIAL LCA; IMPACT ASSESSMENT; ENVIRONMENTAL IMPACTS; CARBON FOOTPRINT; MILK-PRODUCTION; BEEF-PRODUCTION; DAIRY FARMS; PASTURE;
D O I
10.1111/jiec.12526
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Epitaxial growth is a potential production process for the new material graphene, where it is grown on silicon carbide (SiC) wafers at high temperatures. We provide first estimates of the life cycle cumulative energy demand, climate change, terrestrial acidification, and ecotoxicity of this production. For this purpose, we applied prospective life cycle assessment (LCA) for three production scenarios (lab, pilot, and an industrial scenario), which reflect different production scales and technological maturity. The functional unit was one square centimeter of graphene. Results show that the three scenarios have similar impacts, which goes against previous studies that have suggested a decrease with larger production scale and technological maturity. The reason for this result is the dominance of electricity use in the SiC wafer production for all impacts (>99% in the worst case, >76% in the best case). Only when assuming thinner SiC wafers in the industrial scenario is there a reduction in impacts by around a factor of 10. A surface-area-based comparison to the life cycle energy use of graphene produced by chemical vapor deposition showed that epitaxial graphene was considerably more energy intensive-approximately a factor of 1,000. We recommend producers of epitaxial graphene to investigate the feasibility of thinner SiC wafers and use electricity based on wind, solar, or hydropower. The main methodological recommendation from the study is to achieve a temporal robustness of LCA studies of emerging technologies, which includes the consideration of different background systems and differences in production scale and technological maturity.
引用
收藏
页码:1153 / 1164
页数:12
相关论文
共 81 条
[51]   Intensification and diversification of New Zealand agriculture since 1960: An evaluation of current indicators of land use change [J].
MacLeod, CJ ;
Moller, H .
AGRICULTURE ECOSYSTEMS & ENVIRONMENT, 2006, 115 (1-4) :201-218
[52]  
McCarthy S., 2014, Proceedings of the New Zealand Grassland Association, V76, P75
[53]   Integration of measures to mitigate reactive nitrogen losses to the environment from grazed pastoral dairy systems [J].
Monaghan, R. M. ;
de Klein, C. A. M. .
JOURNAL OF AGRICULTURAL SCIENCE, 2014, 152 :S45-S56
[54]   Intensive sheep and beef production from pasture - A New Zealand perspective of concerns, opportunities and challenges [J].
Morris, S. T. ;
Kenyon, P. R. .
MEAT SCIENCE, 2014, 98 (03) :330-335
[55]   Updated and harmonised greenhouse gas emissions for crop inventories [J].
Nemecek, Thomas ;
Schnetzer, Julian ;
Reinhard, Jurgen .
INTERNATIONAL JOURNAL OF LIFE CYCLE ASSESSMENT, 2016, 21 (09) :1361-1378
[56]   Relating the carbon footprint of milk from Irish dairy farms to economic performance [J].
O'Brien, D. ;
Hennessy, T. ;
Moran, B. ;
Shalloo, L. .
JOURNAL OF DAIRY SCIENCE, 2015, 98 (10) :7394-7407
[57]   A life cycle assessment of seasonal grass-based and confinement dairy farms [J].
O'Brien, Donal ;
Shalloo, Laurence ;
Patton, Joe ;
Buckley, Frank ;
Grainger, Chris ;
Wallace, Michael .
AGRICULTURAL SYSTEMS, 2012, 107 :33-46
[58]   IMPACT 2002+, ReCiPe 2008 and ILCD's recommended practice for characterization modelling in life cycle impact assessment: a case study-based comparison [J].
Owsianiak, Mikoaj ;
Laurent, Alexis ;
Bjorn, Anders ;
Hauschild, Michael Z. .
INTERNATIONAL JOURNAL OF LIFE CYCLE ASSESSMENT, 2014, 19 (05) :1007-1021
[59]   Carbon and water footprint tradeoffs in fresh tomato production [J].
Page, Girija ;
Ridoutt, Brad ;
Bellotti, Bill .
JOURNAL OF CLEANER PRODUCTION, 2012, 32 :219-226
[60]   Impact of agricultural-based biofuel production on greenhouse gas emissions from land-use change: Key modelling choices [J].
Panichelli, Luis ;
Gnansounou, Edgard .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2015, 42 :344-360