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12篇 您的检索式:作者名="Andalis"
    题名 作者 年代 出处 被引量
1Calorie restriction extends Saccharomyces cerevisiae lifespan by increasing respiration显示文摘Lin SJ Kaeberlein M Andalis AA 2002Nature2002,418,6895:1
2Calorie restriction extends Saccharomyces cerevisiae lifespan by increasing respiration显示文摘Lin S J Kaeberlein M Andalis A A 2002Nature2002,418,6895:1
3Calorie restriction extends Saeeharomyees cerevisiae lifespan by increasing respiration 显示文摘Lin SJ Kaeberiein M Andalis AA 2002Nature2002,418,6895:1
4Calorie re-striction extends saccharomyces cerevisiae lifespan by in-creasing respiration显示文摘Lin SJ Kaeberlein M Andalis AA 2002Nature2002,418,18:1
5Calorie restriction extends Saccharomyces cerevisiae lifespan by increasing respiration显示文摘Lin SJ Kaebedein M Andalis AA 2002Nature2002,418,:1
6Calorie restriction extends Saccharomyces cerevisiae lifespan by increasing respiration显示文摘Lin SJ Kaeberlein M Andalis AA 0,,6895:1
7Automated Digital Network System Description 显示文摘Rex Buddenberg Brian Rehard Jim Sullivan Eric Andalis and Mark Witzel 1997IETF Internet Draft1997,,:1
8Calorie restriction extends Saccharomyces cerevisiae lifespan by increasing respiration显示文摘Lin SJ Kaeberlein M Andalis AA 2002Nature2002,418,6895:1
9Calorie restriction extends Saeeharomyces eerevisiae lifespan by increasing respiration显示文摘Lin S J Kaeberlein M Andalis AA 2002Nature2002,418,6895:1
10Calorie restriction extends Saccharomyces cerevisiae lifespan by increasing respiration显示文摘Lin S J Kaeberlein M Andalis AA 2002Nature2002,418,6895:1
11Calorie restriction extends Saccharomyces cerevisiae lifespan by increasing respiration显示文摘LIN S J KAEBERLEIN M ANDALIS A A 2002Nature2002,418,:1
12Direct measurement of topological invariants in photonic superlattices显示文摘Since the discovery of topological insulators,topological phases have generated considerable attention across the physics community.The superlattices in particular offer a rich system with several degrees of freedom to explore a variety of topological characteristics and control the localization of states.Albeit their importance,characterizing topological invariants in superlattices consisting of a multi-band structure is challenging beyond the basic case of two-bands as in the Su–Schreifer–Heeger model.Here,we experimentally demonstrate the direct measurement of the topological character of chiral superlattices with broken inversion symmetry.Using a CMOS-compatible nanophotonic chip,we probe the state evolving in the system along the propagation direction using novel nanoscattering structures.We employ a two-waveguide bulk excitation scheme to the superlattice,enabling the identification of topological zero-energy modes through measuring the beam displacement.Our measurements reveal quantized beam displacement corresponding to 0.088 and-0.245,in the cases of trivial and nontrivial photonic superlattices,respectively,showing good agreement with the theoretical values of 0 and-0.25.Our results provide direct identification of the quantized topological numbers in superlattices using a single-shot approach,paving the way for direct measurements of topological invariants in complex photonic structures using tailored excitations with Wannier functions.ZE-SHENG XU JUN GAO GOVIND KRISHNA STEPHAN STEINHAUER VAL ZWILLER ANDALI W.ELSHAARI 2022Photonics Research2022,10,12:0
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