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Recycling and metabolic flexibility dictate life in the lower oceanic crust 期刊论文
NATURE, 2020, 579 (7798) : 250-+
作者:  Zhou, Peng;  Yang, Xing-Lou;  Wang, Xian-Guang;  Hu, Ben;  Zhang, Lei;  Zhang, Wei;  Si, Hao-Rui;  Zhu, Yan;  Li, Bei;  Huang, Chao-Lin;  Chen, Hui-Dong;  Chen, Jing;  Luo, Yun;  Guo, Hua;  Jiang, Ren-Di;  Liu, Mei-Qin;  Chen, Ying;  Shen, Xu-Rui;  Wang, Xi;  Zheng, Xiao-Shuang;  Zhao, Kai;  Chen, Quan-Jiao;  Deng, Fei;  Liu, Lin-Lin;  Yan, Bing;  Zhan, Fa-Xian;  Wang, Yan-Yi;  Xiao, Geng-Fu;  Shi, Zheng-Li
收藏  |  浏览/下载:59/0  |  提交时间:2020/05/13

The lithified lower oceanic crust is one of Earth'  s last biological frontiers as it is difficult to access. It is challenging for microbiota that live in marine subsurface sediments or igneous basement to obtain sufficient carbon resources and energy to support growth(1-3) or to meet basal power requirements(4) during periods of resource scarcity. Here we show how limited and unpredictable sources of carbon and energy dictate survival strategies used by low-biomass microbial communities that live 10-750 m below the seafloor at Atlantis Bank, Indian Ocean, where Earth'  s lower crust is exposed at the seafloor. Assays of enzyme activities, lipid biomarkers, marker genes and microscopy indicate heterogeneously distributed and viable biomass with ultralow cell densities (fewer than 2,000 cells per cm(3)). Expression of genes involved in unexpected heterotrophic processes includes those with a role in the degradation of polyaromatic hydrocarbons, use of polyhydroxyalkanoates as carbon-storage molecules and recycling of amino acids to produce compounds that can participate in redox reactions and energy production. Our study provides insights into how microorganisms in the plutonic crust are able to survive within fractures or porous substrates by coupling sources of energy to organic and inorganic carbon resources that are probably delivered through the circulation of subseafloor fluids or seawater.


  
Power generation from ambient humidity using protein nanowires 期刊论文
NATURE, 2020, 578 (7796) : 550-+
作者:  Luong, Duy X.;  Bets, Ksenia V.;  Algozeeb, Wala Ali;  Stanford, Michael G.;  Kittrell, Carter;  Chen, Weiyin;  Salvatierra, Rodrigo V.;  Ren, Muqing;  McHugh, Emily A.;  Advincula, Paul A.;  Wang, Zhe;  Bhatt, Mahesh;  Guo, Hua;  Mancevski, Vladimir;  Shahsavari, Rouzbeh;  Yakobson, Boris I.;  Tour, James M.
收藏  |  浏览/下载:111/0  |  提交时间:2020/07/03

Harvesting energy from the environment offers the promise of clean power for self-sustained systems(1,2). Known technologies-such as solar cells, thermoelectric devices and mechanical generators-have specific environmental requirements that restrict where they can be deployed and limit their potential for continuous energy production(3-5). The ubiquity of atmospheric moisture offers an alternative. However, existing moisture-based energy-harvesting technologies can produce only intermittent, brief (shorter than 50 seconds) bursts of power in the ambient environment, owing to the lack of a sustained conversion mechanism(6-12). Here we show that thin-film devices made from nanometre-scale protein wires harvested from the microbe Geobacter sulfurreducens can generate continuous electric power in the ambient environment. The devices produce a sustained voltage of around 0.5 volts across a 7-micrometre-thick film, with a current density of around 17 microamperes per square centimetre. We find the driving force behind this energy generation to be a self-maintained moisture gradient that forms within the film when the film is exposed to the humidity that is naturally present in air. Connecting several devices linearly scales up the voltage and current to power electronics. Our results demonstrate the feasibility of a continuous energy-harvesting strategy that is less restricted by location or environmental conditions than other sustainable approaches.


A new type of energy-harvesting device, based on protein nanowires from the microbe Geobacter sulforreducens, can generate a sustained power output by producing a moisture gradient across the nanowire film using natural humidity.


  
Factors influencing energy requirements and CO2 emissions of households in Thailand: A panel data analysis 期刊论文
ENERGY POLICY, 2019, 129: 521-531
作者:  Meangbua, Onicha;  Dhakal, Shobhakar;  Kuwornu, John K. M.
收藏  |  浏览/下载:19/0  |  提交时间:2019/11/26
Energy requirements  CO2 emissions  Panel data analysis  Thailand  
EPAct Programs Share Goals, Collaborate for Success (Revised) (Fact Sheet) 科技报告
来源:US Department of Energy (DOE). 出版年: 2014
作者:  [null]
收藏  |  浏览/下载:8/0  |  提交时间:2019/04/05
TRANSPORTATION  MARKET TRANSFORMATION  VEHICLE TECHNOLOGIES OFFICE  VTO  EPACT  ENERGY POLICY ACT  STATE AND ALTERNATIVE FUEL PROVIDER FLEETS  SFP  STATE FLEETS  ALTERNATIVE FUEL PROVIDER FLEETS  EPACT REQUIREMENTS  CLEAN CITIES RESOURCES  VEHICLE FLEETS  
Standard Compliance: Guidelines to Help State and Alternative Fuel Provider Fleets Meet Their Energy Policy Act Requirements, 10 CFR Part 490 (Book) 科技报告
来源:US Department of Energy (DOE). 出版年: 2012
作者:  [null]
收藏  |  浏览/下载:3/0  |  提交时间:2019/04/05
ALTERNATIVE FUEL TRANSPORTATION PROGRAM  ENERGY POLICY ACT  EPACT  STANDARD COMPLIANCE  GUIDELINES  EPACT REQUIREMENTS  STATE AND ALTERNATIVE FUEL PROVIDER FLEETS  STATE FLEETS  ALTERNATIVE FUEL PROVIDER FLEETS  ALTERNATIVE FUELS  ALTERNATIVE FUEL VEHICLE  
Guidance: Requirements for Installing Renewable Fuel Pumps at Federal Fleet Fueling Centers under EISA Section 246: Federal Fleet Program, Federal Energy Management Program, U.S. Department of Energy, March 2011 科技报告
来源:US Department of Energy (DOE). 出版年: 2011
作者:  NSTec Environmental Management
收藏  |  浏览/下载:9/0  |  提交时间:2019/04/05
FEDERAL GUIDANCE  FEDERAL REQUIREMENTS  RENEWABLE FUEL PUMP  FEDERAL FLEET FUELING CENTER  EISA SECTION 246  ENERGY INDEPENDENCE AND SECURITY ACT OF 2007  EISA  PUBLIC LAW 110-140  SECTION 246(A)  SECTION 246(B)  ANNUAL REPORT TO CONGRESS  RENEWABLE FUEL  
BER Science Network Requirements 科技报告
来源:US Department of Energy (DOE). 出版年: 2010
作者:  Alapaty, Kiran;  Allen, Ben;  Bell, Greg;  Benton, David;  Brettin, Tom;  Canon, Shane;  Dart, Eli;  Cotter, Steve;  Crivelli, Silvia;  Carlson, Rich;  Dattoria, Vince;  Desai, Narayan;  Egan, Richard;  Tierney, Brian;  Goodwin, Ken;  Gregurick, Susan;  Hicks, Susan;  Joh
收藏  |  浏览/下载:16/0  |  提交时间:2019/04/05
ESnet  climate  combustion  genomics  biology  networking  network performance  supercomputing  carbon  network requirements  computational chemistry  atomspheric sciences  Energy Sciences Network