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国际研究揭示生物碳泵在气候调节和碳封存中具有重要价值 快报文章
气候变化快报,2025年第8期
作者:  董利苹 杜海霞
Microsoft Word(16Kb)  |  收藏  |  浏览/下载:430/0  |  提交时间:2025/04/20
Biological Carbon Pump  Distribution  Quantification  Valuation  
气候变化和陆源输入将降低北冰洋生物碳泵的效率 快报文章
气候变化快报,2025年第2期
作者:  董利苹 杜海霞
Microsoft Word(15Kb)  |  收藏  |  浏览/下载:430/1  |  提交时间:2025/01/20
Climate Change  Terrigenous Inputs  Arctic Ocean  Biological Carbon Pump  
浮游动物是海洋碳通量衰减的主要驱动因素 快报文章
资源环境快报,2024年第18期
作者:  董利苹
Microsoft Word(19Kb)  |  收藏  |  浏览/下载:462/1  |  提交时间:2024/09/29
Decoding  Oceanic Biological Pump  Carbon Flux Attenuation  Drivers  
DOE投入近8500万美元扩大国内热泵生产 快报文章
地球科学快报,2024年第16期
作者:  刘文浩
Microsoft Word(21Kb)  |  收藏  |  浏览/下载:584/0  |  提交时间:2024/08/23
DOE  Heat Pump  
英国宣布多项热泵支持措施 快报文章
气候变化快报,2023年第21期
作者:  迪里努尔 刘燕飞
Microsoft Word(13Kb)  |  收藏  |  浏览/下载:536/1  |  提交时间:2023/11/05
Heat pump grants  the Heat Pump Ready Programme  The Welcome Home to Energy Efficiency campaign  
海洋生物泵中的碳沉降可封存39亿吨碳 快报文章
资源环境快报,2023年第08期
作者:  董利苹
Microsoft Word(16Kb)  |  收藏  |  浏览/下载:616/1  |  提交时间:2023/05/03
Coastal Upwelling Biome  Biological Pump Pathways  Carbon Sequestration  
Nature:热浪事件或抑制海洋的碳汇功能 快报文章
资源环境快报,2021年第21期
作者:  薛明媚,王金平
Microsoft Word(13Kb)  |  收藏  |  浏览/下载:745/1  |  提交时间:2021/11/15
Blob Heatwaves  Biological Pump  Ocean Carbon  
Femtosecond-to-millisecond structural changes in a light-driven sodium pump 期刊论文
NATURE, 2020, 583 (7815) : 314-+
作者:  Moore, Luiza;  Leongamornlert, Daniel;  Coorens, Tim H. H.;  Sanders, Mathijs A.;  Ellis, Peter;  Dentro, Stefan C.;  Dawson, Kevin J.;  Butler, Tim;  Rahbari, Raheleh;  Mitchell, Thomas J.;  Maura, Francesco;  Nangalia, Jyoti;  Tarpey, Patrick S.;  Brunner, Simon F.;  Lee-Six, Henry;  Hooks, Yvette;  Moody, Sarah;  Mahbubani, Krishnaa T.;  Jimenez-Linan, Mercedes;  Brosens, Jan J.;  Iacobuzio-Donahue, Christine A.;  Martincorena, Inigo;  Saeb-Parsy, Kourosh;  Campbell, Peter J.;  Stratton, Michael R.
收藏  |  浏览/下载:62/0  |  提交时间:2020/07/03

Light-driven sodium pumps actively transport small cations across cellular membranes(1). These pumps are used by microorganisms to convert light into membrane potential and have become useful optogenetic tools with applications in neuroscience. Although the resting state structures of the prototypical sodium pump Krokinobacter eikastus rhodopsin 2 (KR2) have been solved(2,3), it is unclear how structural alterations overtime allow sodium to be translocated against a concentration gradient. Here, using the Swiss X-ray Free Electron Laser(4), we have collected serial crystallographic data at ten pump-probe delays from femtoseconds to milliseconds. High-resolution structural snapshots throughout the KR2 photocycle show how retinal isomerization is completed on the femtosecond timescale and changes the local structure of the binding pocket in the early nanoseconds. Subsequent rearrangements and deprotonation of the retinal Schiff base open an electrostatic gate in microseconds. Structural and spectroscopic data, in combination with quantum chemical calculations, indicate that a sodium ion bind stransiently close to the retinal within one millisecond. In the last structural intermediate, at 20 milliseconds after activation, we identified a potential second sodium-binding site close to the extracellular exit. These results provide direct molecular insight into the dynamics of active cation transport across biological membranes.


  
Massively parallel coherent laser ranging using a soliton microcomb 期刊论文
NATURE, 2020, 581 (7807) : 164-+
作者:  Casanova, Emmanuelle;  Knowles, Timothy D. J.;  Bayliss, Alex;  Dunne, Julie;  Baranski, Marek Z.;  Denaire, Anthony;  Lefranc, Philippe;  di Lernia, Savino;  Roffet-Salque, Melanie;  Smyth, Jessica;  Barclay, Alistair;  Gillard, Toby;  Classen, Erich;  Coles, Bryony;  Ilett, Michael;  Jeunesse, Christian;  Krueger, Marta;  Marciniak, Arkadiusz;  Minnitt, Steve;  Rotunno, Rocco;  van de Velde, Pieter;  van Wijk, Ivo;  Cotton, Jonathan;  Daykin, Andy;  Evershed, Richard P.
收藏  |  浏览/下载:71/0  |  提交时间:2020/07/03

Coherent ranging, also known as frequency-modulated continuous-wave (FMCW) laser-based light detection and ranging (lidar)(1) is used for long-range three-dimensional distance and velocimetry in autonomous driving(2,3). FMCW lidar maps distance to frequency(4,5) using frequency-chirped waveforms and simultaneously measures the Doppler shift of the reflected laser light, similar to sonar or radar(6,7) and coherent detection prevents interference from sunlight and other lidar systems. However, coherent ranging has a lower acquisition speed and requires precisely chirped(8) and highly coherent(5) laser sources, hindering widespread use of the lidar system and impeding parallelization, compared to modern time-of-flight ranging systems that use arrays of individual lasers. Here we demonstrate a massively parallel coherent lidar scheme using an ultra-low-loss photonic chip-based soliton microcomb(9). By fast chirping of the pump laser in the soliton existence range(10) of a microcomb with amplitudes of up to several gigahertz and a sweep rate of up to ten megahertz, a rapid frequency change occurs in the underlying carrier waveform of the soliton pulse stream, but the pulse-to-pulse repetition rate of the soliton pulse stream is retained. As a result, the chirp from a single narrow-linewidth pump laser is transferred to all spectral comb teeth of the soliton at once, thus enabling parallelism in the FMCW lidar. Using this approach we generate 30 distinct channels, demonstrating both parallel distance and velocity measurements at an equivalent rate of three megapixels per second, with the potential to improve sampling rates beyond 150 megapixels per second and to increase the image refresh rate of the FMCW lidar by up to two orders of magnitude without deterioration of eye safety. This approach, when combined with photonic phase arrays(11) based on nanophotonic gratings(12), provides a technological basis for compact, massively parallel and ultrahigh-frame-rate coherent lidar systems.


  
Investigating the Nutrient Landscape in a Coastal Upwelling Region and Its Relationship to the Biological Carbon Pump 期刊论文
GEOPHYSICAL RESEARCH LETTERS, 2020, 47 (6)
作者:  Stukel, M. R.;  Barbeau, K. A.
收藏  |  浏览/下载:21/0  |  提交时间:2020/07/02
biological pump  iron  nitrate  nutrients  marine biogeochemistry  carbon export