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Fire and biodiversity in the Anthropocene 期刊论文
Science, 2020
作者:  Luke T. Kelly;  Katherine M. Giljohann;  Andrea Duane;  Núria Aquilué;  Sally Archibald;  Enric Batllori;  Andrew F. Bennett;  Stephen T. Buckland;  Quim Canelles;  Michael F. Clarke;  Marie-Josée Fortin;  Virgilio Hermoso;  Sergi Herrando;  Robert E. Keane;  Frank K. Lake;  Michael A. McCarthy;  Alejandra Morán-Ordóñez;  Catherine L. Parr;  Juli G. Pausas;  Trent D. Penman;  Adrián Regos;  Libby Rumpff;  Julianna L. Santos;  Annabel L. Smith;  Alexandra D. Syphard;  Morgan W. Tingley;  Lluís Brotons
收藏  |  浏览/下载:10/0  |  提交时间:2020/11/24
HEM1 deficiency disrupts mTORC2 and F-actin control in inherited immunodysregulatory disease 期刊论文
Science, 2020
作者:  Sarah A. Cook;  William A. Comrie;  M. Cecilia Poli;  Morgan Similuk;  Andrew J. Oler;  Aiman J. Faruqi;  Douglas B. Kuhns;  Sheng Yang;  Alexander Vargas-Hernández;  Alexandre F. Carisey;  Benjamin Fournier;  D. Eric Anderson;  Susan Price;  Margery Smelkinson;  Wadih Abou Chahla;  Lisa R. Forbes;  Emily M. Mace;  Tram N. Cao;  Zeynep H. Coban-Akdemir;  Shalini N. Jhangiani;  Donna M. Muzny;  Richard A. Gibbs;  James R. Lupski;  Jordan S. Orange;  Geoffrey D. E. Cuvelier;  Moza Al Hassani;  Nawal Al Kaabi;  Zain Al Yafei;  Soma Jyonouchi;  Nikita Raje;  Jason W. Caldwell;  Yanping Huang;  Janis K. Burkhardt;  Sylvain Latour;  Baoyu Chen;  Gehad ElGhazali;  V. Koneti Rao;  Ivan K. Chinn;  Michael J. Lenardo
收藏  |  浏览/下载:12/0  |  提交时间:2020/07/14
Experimental demonstration of memory-enhanced quantum communication 期刊论文
NATURE, 2020
作者:  Quinn, Robert A.;  Melnik, Alexey, V;  Vrbanac, Alison;  Fu, Ting;  Patras, Kathryn A.;  Christy, Mitchell P.;  Bodai, Zsolt;  Belda-Ferre, Pedro;  Tripathi, Anupriya;  Chung, Lawton K.;  Downes, Michael;  Welch, Ryan D.;  Quinn, Melissa;  Humphrey, Greg;  Panitchpakdi, Morgan;  Weldon, Kelly C.;  Aksenov, Alexander;  da Silva, Ricardo;  Avila-Pacheco, Julian;  Clish, Clary;  Bae, Sena;  Mallick, Himel;  Franzosa, Eric A.;  Lloyd-Price, Jason;  Bussell, Robert;  Thron, Taren;  Nelson, Andrew T.;  Wang, Mingxun;  Leszczynski, Eric;  Vargas, Fernando;  Gauglitz, Julia M.;  Meehan, Michael J.;  Gentry, Emily;  Arthur, Timothy D.;  Komor, Alexis C.;  Poulsen, Orit;  Boland, Brigid S.;  Chang, John T.;  Sandborn, William J.;  Lim, Meerana;  Garg, Neha;  Lumeng, Julie C.;  Xavier, Ramnik J.;  Kazmierczak, Barbara, I;  Jain, Ruchi;  Egan, Marie;  Rhee, Kyung E.;  Ferguson, David;  Raffatellu, Manuela;  Vlamakis, Hera;  Haddad, Gabriel G.;  Siegel, Dionicio;  Huttenhower, Curtis;  Mazmanian, Sarkis K.;  Evans, Ronald M.;  Nizet, Victor;  Knight, Rob;  Dorrestein, Pieter C.
收藏  |  浏览/下载:36/0  |  提交时间:2020/07/03

The ability to communicate quantum information over long distances is of central importance in quantum science and engineering(1). Although some applications of quantum communication such as secure quantum key distribution(2,3) are already being successfully deployed(4-7), their range is currently limited by photon losses and cannot be extended using straightforward measure-and-repeat strategies without compromising unconditional security(8). Alternatively, quantum repeaters(9), which utilize intermediate quantum memory nodes and error correction techniques, can extend the range of quantum channels. However, their implementation remains an outstanding challenge(10-16), requiring a combination of efficient and high-fidelity quantum memories, gate operations, and measurements. Here we use a single solid-state spin memory integrated in a nanophotonic diamond resonator(17-19) to implement asynchronous photonic Bell-state measurements, which are a key component of quantum repeaters. In a proof-of-principle experiment, we demonstrate high-fidelity operation that effectively enables quantum communication at a rate that surpasses the ideal loss-equivalent direct-transmission method while operating at megahertz clock speeds. These results represent a crucial step towards practical quantum repeaters and large-scale quantum networks(20,21).


A solid-state spin memory is used to demonstrate quantum repeater functionality, which has the potential to overcome photon losses involved in long-distance transmission of quantum information.