Recent advancements in metamaterials and plasmonics have promised a number of exciting applications, in particular at terahertz and optical frequencies. Unfortunately, the noble metals used in these photonic structures are not particularly good conductors at high frequencies, resulting in significant dissipative loss. Here, we address the question of what is a good conductor for metamaterials and plasmonics. For resonant metamaterials, we develop a figure-of-merit for conductors that allows for a straightforward classification of conducting materials according to the resulting dissipative loss in the metamaterial. Application of our method predicts that graphene and high-T c superconductors are not viable alternatives for metals in metamate...
Materials research plays a vital role in transforming breakthrough scientific ideas into next-genera...
Metamaterials (MMs) are artificial, engineered materials with rationally designed compositions and a...
In recent years, the emerging areas of nanophotonics and, in particular, plasmonics and metamaterial...
Recent advancements in metamaterials and plasmonics have promised a number of exciting applications,...
We review conducting materials like metals, conducting oxides and graphene for nanophotonic applicat...
We review conducting materials like metals, conducting oxides and graphene for nanophotonic applicat...
What is a good conductor for metamaterials or plasmonics Abstract: We review conducting materials li...
New research suggests that graphene is not a \u27miracle material\u27 for metamaterials and plasmoni...
New research suggests that graphene is not a 'miracle material' for metamaterials and plasmonics. Na...
Plasmonics aims at combining features of photonics and electronics by coupling photons with a free-e...
Metamaterials (MMs) are artificial, engineered materials with rationally designed compositions and a...
Materials research plays a vital role in transforming breakthrough scientific ideas into next-genera...
Materials research plays a vital role in transforming breakthrough scientific ideas into next-genera...
Metamaterials (MMs) are artificial, engineered materials with rationally designed compositions and a...
We argue that superconductors provide a unique material platform for both plasmonic and quantum meta...
Materials research plays a vital role in transforming breakthrough scientific ideas into next-genera...
Metamaterials (MMs) are artificial, engineered materials with rationally designed compositions and a...
In recent years, the emerging areas of nanophotonics and, in particular, plasmonics and metamaterial...
Recent advancements in metamaterials and plasmonics have promised a number of exciting applications,...
We review conducting materials like metals, conducting oxides and graphene for nanophotonic applicat...
We review conducting materials like metals, conducting oxides and graphene for nanophotonic applicat...
What is a good conductor for metamaterials or plasmonics Abstract: We review conducting materials li...
New research suggests that graphene is not a \u27miracle material\u27 for metamaterials and plasmoni...
New research suggests that graphene is not a 'miracle material' for metamaterials and plasmonics. Na...
Plasmonics aims at combining features of photonics and electronics by coupling photons with a free-e...
Metamaterials (MMs) are artificial, engineered materials with rationally designed compositions and a...
Materials research plays a vital role in transforming breakthrough scientific ideas into next-genera...
Materials research plays a vital role in transforming breakthrough scientific ideas into next-genera...
Metamaterials (MMs) are artificial, engineered materials with rationally designed compositions and a...
We argue that superconductors provide a unique material platform for both plasmonic and quantum meta...
Materials research plays a vital role in transforming breakthrough scientific ideas into next-genera...
Metamaterials (MMs) are artificial, engineered materials with rationally designed compositions and a...
In recent years, the emerging areas of nanophotonics and, in particular, plasmonics and metamaterial...