4.8 Article

Near-field Terahertz Sensing of HeLa Cells and Pseudomonas Based on Monolithic Integrated Metamaterials with a Spintronic Terahertz Emitter

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 12, 期 32, 页码 35895-35902

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.0c08543

关键词

near-field biosensing; electromagnetically induced transparency analogue; metamaterials; spintronic terahertz emitter; monolithic integration

资金

  1. National Key R&D Program of China [2018YFB0407602]
  2. National Natural Science Foundation of China [61774013, 11827807, 61905007, 4194083]
  3. International Collaboration Project [B16001]
  4. National Key Technology Program of China [2017ZX01032101]
  5. Open Project Program of Wuhan National Laboratory for Optoelectronics [2018WNLOKF001]
  6. Zhuoyue Program of Beihang University [ZG216S18B5]
  7. Qingdao Innovation and Entrepreneurship Leadership Program [18-1-2-21-zhc]
  8. VR innovation platform from the Qingdao Science and Technology Commission
  9. Australian Research Council Future Fellowship [FT160100039]
  10. Magnetic Sensor innovation platform from LaoShan District

向作者/读者索取更多资源

Label-free biosensors operating within the terahertz (THz) spectra have helped to unlock a myriad of potential THz applications, ranging from biomaterial detection to point-of-care diagnostics. However, the THz wave diffraction limit and the lack of emitter-integrated THz biosensors hinder the proliferation of high-resolution near-field label-free THz biosensing. Here, a monolithic THz emission biosensor (TEB) is achieved for the first time by integrating asymmetric double-split ring resonator metamaterials with a ferromagnetic heterojunction spintronic THz emitter. This device exhibits an electromagnetically induced transparency window with a resonance frequency of 1.02 THz and a spintronic THz radiation source with a bandwidth of 900 GHz, which are integrated on a fused silica substrate monolithically for the first time. It was observed that the resonance frequency experienced a red-shift behavior with increasing concentration of HeLa cells and Pseudomonas because of the strong interaction between the spintronic THz radiation and the biological samples on the metamaterials. The spatial frequency red-shift resolution is similar to 0.01 THz with a Pseudomonas concentration increase from similar to 0.5 x 10(4) to similar to 1 x 10(4)/mL. The monolithic THz biosensor is also sensitive to the sample concentration distribution with a 15.68 sensitivity under a spatial resolution of 500 mu m, which is determined by the infrared pump light diffraction limit. This TEB shows great potential for high-resolution near-field biosensing applications of trace biological samples.

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