- SCOPUS
- 7005123966
- Sonstiges
- korrespondierende*r Autor*in
- GND
- 121637360
- ORCID
-
0000-0001-9396-7365
- SCOPUS
- 6603346269
- Sonstiges
- der Hochschule zugeordnet
- SCOPUS
- 10141918800
- SCOPUS
- 59903990900
- SCOPUS
- 60432421100
- SCOPUS
- 57214098778
- SCOPUS
- 60432651000
- SCOPUS
- 36236992000
- SCOPUS
- 6507206108
- SCOPUS
- 57204371731
- SCOPUS
- 57223357004
- SCOPUS
- 60432559000
- SCOPUS
- 16238346300
- SCOPUS
- 6507914793
- SCOPUS
- 57190167868
- SCOPUS
- 12752185900
- GND
- 131701819
- ORCID
-
0000-0003-4257-593X
- SCOPUS
- 57204716578
- SCOPUS
- 57209866735
- SCOPUS
- 57226261902
- SCOPUS
- 57611307600
- SCOPUS
- 57614582000
- SCOPUS
- 57645766300
- SCOPUS
- 58284570400
- SCOPUS
- 59064113000
- SCOPUS
- 59311512900
- SCOPUS
- 59944510100
- SCOPUS
- 7103251673
- Sonstiges
- der Hochschule zugeordnet
Abstract in Englisch:
This paper aims to propose and discuss a pathway to versatile, portable, and wearable photonics devices in the mid-infrared region. We address the benefits and challenges of mid-infrared spectroscopy in the fingerprint region and the development of low-cost mass production devices for real-world applications in the near future. Firstly, the paper briefly introduces the mid-infrared and fingerprint region and discusses the importance of the detection of mid-infrared biomarkers for point-of-care medical applications, stressing the importance of multi-wavelength probing systems. We also discuss the challenge of long-wavelength signals through the matter and the benefits of photo-acoustic detection. The pathway we envisage is twofold: the first is to improve and predict deviation from the standard Bouguer–Beer–Lambert approximation for light propagation in tissue and matter. This approach requires calibrated and wavelength-specific sources. Secondly, to address these requirements, the paper presents the potential for future low-cost personalized devices based on an array of quantum cascade lasers developed on low-cost C-MOS technology and using photo-acoustic detection. The technology was first developed for gas analyses, but we report on a recent successful wearable device for glucose monitoring, which passed clinical trials. This technology will allow the development of future widespread portable mid-infrared devices with potential application not only in healthcare, addressed here, but also in precise gas and environmental chemical monitoring. The ability to record mid-infrared biomarkers at the point of care will be fundamental for the personalized optical digital twin, which will be the cornerstone of future healthcare systems.