【24h】

Nonresonant ENZ Metamaterial at Visible Wavelength for Superior Refractive Index Matching Sensing

机译:可见光波长的非谐振ENZ超材料,可实现出色的折射率匹配传感

获取原文

摘要

In the compelling race of finding alternative plasmonic material, metallic sodium tungsten bronzes, Na_xWO_3 with x>0.25, hostpromising optoelectronic properties emerging from the insulator-metal transition (IMT), such as strong interband transition andintense near-infrared plasmonic absorption. So far, studies have focused on tuning the IR plasmonic properties for therealization of functional devices, ranging from biosensors to smart windows. However, the utilization of the transparency bandwhere the permittivity approaches zero still remains largely unexplored. Here, we show preliminary results which indicates anepsilon-near-zero (ENZ) behavior at optical frequencies of Na_xWO_3 which arises from the minimization of the total scatteringcross-section. Additionally, as a proof of concept, we explore this material for sensing applications and we establish aperformant optical sensor with sensitivity of 150 nm/RIU and showing a threefold enhancement with respect to traditional Aunanospheres. The peculiar sensing mechanism is investigated both experimentally and theoretically by means ofelectrodynamic and first principle calculations. Combined with the high quality of the Na_xWO_3 single crystals, ENZ propertiesin the ~400-600 nm region and low losses, these new insights offer great promise for the inexpensive realization of newgenerations of electro-optical devices with application ranging from ultrasensitive biosensors and light harvesting to exoticcloaking materials.
机译:在寻找替代等离子体材料的激烈竞赛中,金属钠钨青铜,Na_xWO_3(x> 0.25)作为宿主 绝缘体-金属跃迁(IMT)产生的有希望的光电特性,例如强带间跃迁和 强烈的近红外等离子体吸收。到目前为止,研究集中在调整红外等离子体的等离子体特性。 实现功能设备,从生物传感器到智能窗户。但是,透明带的利用 介电常数接近零的地方仍未开发。在这里,我们显示了初步结果,表明 Na_xWO_3的光频率下的epsilon-接近零(ENZ)行为是由于总散射的最小化而产生的 横截面。此外,作为概念验证,我们将探索该材料用于传感应用,并建立一个 灵敏度为150 nm / RIU的高性能光学传感器,相对于传统Au表现出三倍的增强 纳米球。通过物理实验和理论研究了特殊的感应机制。 电动和第一原理计算。结合高质量的Na_xWO_3单晶,ENZ特性 在〜400-600 nm区域和低损耗的情况下,这些新见解为廉价实现新技术提供了广阔的前景。 从超灵敏的生物传感器,光收集到奇异的应用,各代电光设备的应用 掩护材料。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号