Robust hybrid enzyme nanoreactor mediated plasmonic sensing strategy for ultrasensitive screening of anti-diabetic drug

2018 ◽  
Vol 99 ◽  
pp. 653-659 ◽  
Author(s):  
Weiheng Kong ◽  
Di Wu ◽  
Na Hu ◽  
Ning Li ◽  
Chunji Dai ◽  
...  
2021 ◽  
Vol 33 (7) ◽  
pp. 2005133
Author(s):  
Le Liang ◽  
Peng Zheng ◽  
Chi Zhang ◽  
Ishan Barman

2021 ◽  
Vol 103 (24) ◽  
Author(s):  
Daimin Li ◽  
Jun-Yu Ou ◽  
Peng Xie ◽  
Zhengchen Liang ◽  
Wei Wang ◽  
...  

Sensors ◽  
2021 ◽  
Vol 21 (11) ◽  
pp. 3776
Author(s):  
Libin Sun ◽  
Douglas Conrad ◽  
Drew A. Hall ◽  
Kurt D. Benkstein ◽  
Steve Semancik ◽  
...  

A plasmonic sensing platform was developed as a noninvasive method to monitor gas-phase biomarkers related to cystic fibrosis (CF). The nanohole array (NHA) sensing platform is based on localized surface plasmon resonance (LSPR) and offers a rapid data acquisition capability. Among the numerous gas-phase biomarkers that can be used to assess the lung health of CF patients, acetaldehyde was selected for this investigation. Previous research with diverse types of sensing platforms, with materials ranging from metal oxides to 2-D materials, detected gas-phase acetaldehyde with the lowest detection limit at the µmol/mol (parts-per-million (ppm)) level. In contrast, this work presents a plasmonic sensing platform that can approach the nmol/mol (parts-per-billion (ppb)) level, which covers the required concentration range needed to monitor the status of lung infection and find pulmonary exacerbations. During the experimental measurements made by a spectrometer and by a smartphone, the sensing examination was initially performed in a dry air background and then with high relative humidity (RH) as an interferent, which is relevant to exhaled breath. At a room temperature of 23.1 °C, the lowest detection limit for the investigated plasmonic sensing platform under dry air and 72% RH conditions are 250 nmol/mol (ppb) and 1000 nmol/mol (ppb), respectively.


2010 ◽  
Vol 24 (S1) ◽  
Author(s):  
Anita J Mohite ◽  
Annirudha J Chillar ◽  
Shui‐Ping So ◽  
Ke‐He Ruan

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