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Consider Luxembourg [Anonymous] |
216 - 217 |
Nanoscale phase separation in perovskites revisited Erni R, Abakumov AM, Rossell MD, Batuk D, Tsirlin AA, Nenert G, Van Tendeloo G |
217 - 218 |
Nanoscale phase separation in perovskites revisited Reply Davies PK, Guiton BS |
219 - 222 |
Materials science in Luxembourg Kreisel J, Lippmann G, Wirtz L, Schiltz M |
223 - 223 |
Plasmons on screen Martiradonna L |
223 - 223 |
Quasi-Dirac monopoles Nicoletti O |
223 - 223 |
Defective yet strong Pamies P |
223 - 223 |
Facet formation Martiradonna L |
225 - 226 |
ALL-OPTICAL SWITCHING Three rules of design Kimel AV |
226 - 226 |
MATERIAL WITNESS GRAPHENE FINDS ITS PLACE Ball P |
227 - 228 |
POLARITON CONDENSATES Going soft Lagoudakis P |
228 - 229 |
NANOPARTICLE SELF-ASSEMBLY A loop of two rods Yeom B, Kotov NA |
229 - 231 |
LIQUID CRYSTALS Tangled loops and knots Irvine WTM, Kleckner D |
231 - 232 |
GLUING GELS A nanoparticle solution Appel EA, Scherman OA |
233 - 240 |
Charge-extraction strategies for colloidal quantum dot photovoltaics Lan XZ, Masala S, Sargent EH |
241 - 246 |
Thermally driven ratchet motion of a skyrmion microcrystal and topological magnon Hall effect Mochizuki M, Yu XZ, Seki S, Kanazawa N, Koshibae W, Zang J, Mostovoy M, Tokura Y, Nagaosa N |
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Thermally driven ratchet motion of a skyrmion microcrystal and topological magnon Hall effect (vol 13, pg 241, 2014) Mochizuki M, Yu XZ, Seki S, Kanazawa N, Koshibae W, Zang J, Mostovoy M, Tokura Y, Nagaosa N |
248 - 253 |
Room-temperature Bose-Einstein condensation of cavity exciton-polaritons in a polymer Plumhof JD, Stoferle T, Mai LJ, Scherf U, Mahrt RF |
254 - 258 |
Dirac electron states formed at the heterointerface between a topological insulator and a conventional semiconductor Yoshimi R, Tsukazaki A, Kikutake K, Checkelsky JG, Takahashi KS, Kawasaki M, Tokura Y |
259 - 264 |
Mutually tangled colloidal knots and induced defect loops in nematic fields Martinez A, Ravnik M, Lucero B, Visvanathan R, Zumer S, Smalyukh II |
265 - 271 |
Immunoactive two-dimensional self-assembly of monoclonal antibodies in aqueous solution revealed by atomic force microscopy Ido S, Kimiya H, Kobayashi K, Kominami H, Matsushige K, Yamada H |
272 - 279 |
Nonlinear interactions in an organic polariton condensate Daskalakis KS, Maier SA, Murray R, Kena-Cohen S |
280 - 286 |
Movable high-Q nanoresonators realized by semiconductor nanowires on a Si photonic crystal platform Birowosuto MD, Yokoo A, Zhang GQ, Tateno K, Kuramochi E, Taniyama H, Takiguchi M, Notomi M |
287 - 293 |
Engineered materials for all-optical helicity-dependent magnetic switching Mangin S, Gottwald M, Lambert CH, Steil D, Uhlir V, Pang L, Hehn M, Alebrand S, Cinchetti M, Malinowski G, Fainman Y, Aeschlimann M, Fullerton EE |
294 - 301 |
Platinum-cobalt bimetallic nanoparticles in hollow carbon nanospheres for hydrogenolysis of 5-hydroxymethylfurfural Wang GH, Hilgert J, Richter FH, Wang F, Bongard HJ, Spliethoff B, Weidenthaler C, Schuth F |
302 - 308 |
Couples of colloidal semiconductor nanorods formed by self-limited assembly Jia GH, Sitt A, Hitin GB, Hadar I, Bekenstein Y, Amit Y, Popov I, Banin U |
309 - U118 |
Guiding intracortical brain tumour cells to an extracortical cytotoxic hydrogel using aligned polymeric nanofibres Jain A, Betancur M, Patel GD, Valmikinathan CM, Mukhatyar VJ, Vakharia A, Pai SB, Brahma B, MacDonald TJ, Bellamkonda RV |