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世界银行发布《数字技术转型以支持气候变化行动》 快报文章
资源环境快报,2023年第23期
作者:  李恒吉
Microsoft Word(20Kb)  |  收藏  |  浏览/下载:479/0  |  提交时间:2023/12/14
Digital communication technology  Climate change  World Bank  
研究揭示矿业CCMT发展的驱动因素 快报文章
地球科学快报,2022年第17期
作者:  张树良
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climate change mitigation technology  patent analysis  mining technology  
NSTC发布《2022-2028年海洋科技机遇与行动》 快报文章
资源环境快报,2022年第08期
作者:  薛明媚,王金平
Microsoft Word(29Kb)  |  收藏  |  浏览/下载:791/2  |  提交时间:2022/05/01
National Science & Technology Council  Ocean Science and Technology  Climate Change  
研究强调利用负排放技术时需考虑优化组合 快报文章
气候变化快报,2021年第5期
作者:  裴惠娟
Microsoft Word(15Kb)  |  收藏  |  浏览/下载:480/0  |  提交时间:2021/03/05
Negative-emissions Technology  Portfolios  Climate Change  
What are the best combinations of fuel-vehicle technologies to mitigate climate change and air pollution effects across the United States? 期刊论文
ENVIRONMENTAL RESEARCH LETTERS, 2020, 15 (7)
作者:  Tong, Fan;  Azevedo, Ines M. L.
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alternative vehicle technology  climate change damages  health damages  environmental externality  passenger car  sports utility vehicle  transit bus  
Electrical manipulation of a topological antiferromagnetic state 期刊论文
NATURE, 2020, 580 (7805) : 608-+
作者:  Chabon, Jacob J.;  Hamilton, Emily G.;  Kurtz, David M.;  Esfahani, Mohammad S.;  Moding, Everett J.;  Stehr, Henning;  Schroers-Martin, Joseph;  Nabet, Barzin Y.;  Chen, Binbin;  Chaudhuri, Aadel A.;  Liu, Chih Long;  Hui, Angela B.;  Jin, Michael C.;  Azad, Tej D.;  Almanza, Diego;  Jeon, Young-Jun;  Nesselbush, Monica C.;  Keh, Lyron Co Ting;  Bonilla, Rene F.;  Yoo, Christopher H.;  Ko, Ryan B.;  Chen, Emily L.;  Merriott, David J.;  Massion, Pierre P.;  Mansfield, Aaron S.;  Jen, Jin;  Ren, Hong Z.;  Lin, Steven H.;  Costantino, Christina L.;  Burr, Risa;  Tibshirani, Robert;  Gambhir, Sanjiv S.;  Berry, Gerald J.;  Jensen, Kristin C.;  West, Robert B.;  Neal, Joel W.;  Wakelee, Heather A.;  Loo, Billy W., Jr.;  Kunder, Christian A.;  Leung, Ann N.;  Lui, Natalie S.;  Berry, Mark F.;  Shrager, Joseph B.;  Nair, Viswam S.;  Haber, Daniel A.;  Sequist, Lecia V.;  Alizadeh, Ash A.;  Diehn, Maximilian
收藏  |  浏览/下载:59/0  |  提交时间:2020/07/03

Room-temperature electrical switching of a topological antiferromagnetic state in polycrystalline Mn3Sn thin films is demonstrated using the same protocol as that used for conventional ferromagnetic metals.


Electrical manipulation of phenomena generated by nontrivial band topology is essential for the development of next-generation technology using topological protection. A Weyl semimetal is a three-dimensional gapless system that hosts Weyl fermions as low-energy quasiparticles(1-4). It has various exotic properties, such as a large anomalous Hall effect (AHE) and chiral anomaly, which are robust owing to the topologically protected Weyl nodes(1-16). To manipulate such phenomena, a magnetic version of Weyl semimetals would be useful for controlling the locations of Weyl nodes in the Brillouin zone. Moreover, electrical manipulation of antiferromagnetic Weyl metals would facilitate the use of antiferromagnetic spintronics to realize high-density devices with ultrafast operation(17,18). However, electrical control of a Weyl metal has not yet been reported. Here we demonstrate the electrical switching of a topological antiferromagnetic state and its detection by the AHE at room temperature in a polycrystalline thin film(19) of the antiferromagnetic Weyl metal Mn3Sn9,10,12,20, which exhibits zero-field AHE. Using bilayer devices composed of Mn3Sn and nonmagnetic metals, we find that an electrical current density of about 10(10) to 10(11) amperes per square metre induces magnetic switching in the nonmagnetic metals, with a large change in Hall voltage. In addition, the current polarity along the bias field and the sign of the spin Hall angle of the nonmagnetic metals-positive for Pt (ref. (21)), close to 0 for Cu and negative for W (ref. (22))-determines the sign of the Hall voltage. Notably, the electrical switching in the antiferromagnet is achieved with the same protocol as that used for ferromagnetic metals(23,24). Our results may lead to further scientific and technological advances in topological magnetism and antiferromagnetic spintronics.


  
What drives public willingness to participate in the voluntary personal carbon-trading scheme? A case study of Guangzhou Pilot, China 期刊论文
ECOLOGICAL ECONOMICS, 2019, 165
作者:  Tan, Xueping;  Wang, Xinyu;  Zaidi, Syed Haider Ali
收藏  |  浏览/下载:13/0  |  提交时间:2019/11/27
Personal Carbon Trading  Carbon Generalized System of Preferences  Technology Acceptance Model  Structural Equation Model  Participation Willingness  Climate Change  
The impact of solar subsidies on California's non-residential sector 期刊论文
ENERGY POLICY, 2018, 122: 27-35
作者:  Frey, Elaine F.;  Mojtahedi, Saba
收藏  |  浏览/下载:13/0  |  提交时间:2019/04/09
Rebate programs  Technology change  Solar energy  
Technological Change and Energy Efficiency in Large Chinese Firms 期刊论文
ECOLOGICAL ECONOMICS, 2018, 150: 241-250
作者:  Zhu, Junming;  Niu, Limin;  Ruth, Matthias;  Shi, Lei
收藏  |  浏览/下载:10/0  |  提交时间:2019/04/09
Embodied technological change  Top-1000 program  Energy saving  Technology adoption  Firm characteristics  
Comparing future patterns of energy system change in 2 degrees C scenarios to expert projections 期刊论文
GLOBAL ENVIRONMENTAL CHANGE-HUMAN AND POLICY DIMENSIONS, 2018, 50: 201-211
作者:  van Sluisveld, Mariesse A. E.;  Harmsen, Mathijs J. H. M.;  van Vuuren, Detlef P.;  Bosetti, Valentina;  Wilson, Charlie;  van der Zwaan, Bob
收藏  |  浏览/下载:19/0  |  提交时间:2019/04/09
Technology diffusion  Integrated assessment  Climate change  2 degrees  Expert elicitation