| Literature DB >> 34209443 |
Giacomo Fanti1, Francesca Borghi1, Andrea Spinazzè1, Sabrina Rovelli1, Davide Campagnolo1, Marta Keller1, Andrea Cattaneo1, Emanuele Cauda2,3, Domenico Maria Cavallo1.
Abstract
In the last years, the issue of exposure assessment of airborne pollutants has been on the rise, both in the environmental and occupational fields. Increasingly severe national and international air quality standards, indoor air guidance values, and exposure limit values have been developed to protect the health of the general population and workers; this issue required a significant and continuous improvement in monitoring technologies to allow the execution of proper exposure assessment studies. One of the most interesting aspects in this field is the development of the "next-generation" of airborne pollutants monitors and sensors (NGMS). The principal aim of this review is to analyze and characterize the state of the art and of NGMS and their practical applications in exposure assessment studies. A systematic review of the literature was performed analyzing outcomes from three different databases (Scopus, PubMed, Isi Web of Knowledge); a total of 67 scientific papers were analyzed. The reviewing process was conducting systematically with the aim to extrapolate information about the specifications, technologies, and applicability of NGMSs in both environmental and occupational exposure assessment. The principal results of this review show that the use of NGMSs is becoming increasingly common in the scientific community for both environmental and occupational exposure assessment. The available studies outlined that NGMSs cannot be used as reference instrumentation in air monitoring for regulatory purposes, but at the same time, they can be easily adapted to more specific applications, improving exposure assessment studies in terms of spatiotemporal resolution, wearability, and adaptability to different types of projects and applications. Nevertheless, improvements needed to further enhance NGMSs performances and allow their wider use in the field of exposure assessment are also discussed.Entities:
Keywords: citizen science; exposome; low-cost sensors; miniaturized monitors; mobile app; wearable monitors
Mesh:
Substances:
Year: 2021 PMID: 34209443 PMCID: PMC8271362 DOI: 10.3390/s21134513
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Query used in the three different databases (Scopus, ISI Web of Knowledge, PubMed).
| Database | Search Query |
|---|---|
| Scopus | (TITLE-ABS-KEY (“air quality” OR pm OR gas * OR air OR “air pollut *” OR pollut *)) AND (TITLE-ABS-KEY (“personal exposure” OR “human exposure” OR exposome)) AND (TITLE-ABS-KEY (“sensor network” OR “wearable sens *” OR “crowd sensing” OR “participatory sensing” OR “mobile sensor node” OR “low cost sensor” OR “citizen science” OR “mobile phone app *” OR “lightweight device *” OR “bluetooth” OR “air pollution sens *” OR “portable device” OR server OR cloud OR “miniaturized sensor *”)) |
| ISI Web of Knowledge | (TS = (“air quality” OR “pm” OR “gas *” OR “air” OR “air pollut *” OR “pollut *”)) AND (TS = (“personal exposure” OR “human exposure” OR “exposome”)) AND (TS = (“sensor network” OR “wearable sens *” OR “crowd sensing” OR “participatory sensing” OR “mobile sensor node” OR “low cost sensor” OR “citizen science” OR “mobile phone app *” OR “lightweight device *” OR “bluetooth” OR “air pollution sens *” OR “portable device” OR server OR cloud OR “miniaturized sensor *”)) |
| PubMed | (((((((personal exposure) OR (human exposure)) OR (exposome))) AND (((((((air quality) OR (pm)) OR (gas *)) OR (air)) OR (air pollut *)) OR (pollut *)))) AND ((((((((((((((((sensor network) OR (wearable sens *)) OR (crowd sensing)) OR (participatory sensing)) OR (mobile sensor node)) OR (low cost sensor)) OR (citizen science)) OR (mobile phone app *)) OR (lightweight device)) OR (bluetooth)) OR (air pollution sens *)) OR (portable device *)) OR (server)) OR (cloud)) OR (miniaturized sensor)))) NOT (pollut *)) |
Figure 1Flowchart of the papers which are the object of this review (modified from [24]).
Pollutants and other parameters (temperature—T; relative humidity—RH) investigated, relative NGMSs used (only those available), relative technologies (EC—electrochemical; MOS—metal oxide semiconductor; LS—light scattering; CS—capacitive sensing; Th—thermistor; SBG—silicon band gap; n.a.—not available) and the number of involved papers in which sensors were made explicit and used. Monitors are marked by “*” to distinguish them from the sensors. Technical features of the selected sensors are summarized in Tables S2 and S3 (Supplementary Materials).
| Pollutants | Sensor Name/Models | Sensor | Available Papers | References |
|---|---|---|---|---|
| NO2 | Alphasense NO2-A1 | EC | 1 | [ |
| Alphasense NO2-A43F | EC | 4 | [ | |
| Alphasense NO2-B43F | EC | 5 | [ | |
| e2V MiCS-2710 | MOS | 2 | [ | |
| * Sailbri Cooper Inc SCI-608 | n.a. | 1 | [ | |
| SGX SensorTech MiCS 2714 | MOS | 1 | [ | |
| SGX SensorTech MiCS-4514 | MOS | 3 | [ | |
| O3 | Alphasense OX-A431 | EC | 5 | [ |
| Alphasense OX-B431 | EC | 5 | [ | |
| Nissha FIS SP-61 | MOS | 1 | [ | |
| * Sailbri Cooper Inc SCI-608 | n.a. | 1 | [ | |
| SGX Sensortech MICS 2614 | MOS | 3 | [ | |
| Winsen MQ-131 | MOS | 1 | [ | |
| CO | Alphasense CO-A4 | EC | 2 | [ |
| Alphasense CO-AF | EC | 1 | [ | |
| Alphasense CO-B41 | EC | 4 | [ | |
| e2V MiCS-5525 | MOS | 1 | [ | |
| Figaro TGS 2442 | MOS | 1 | [ | |
| * Sailbri Cooper Inc SCI-608 | n.a. | 1 | [ | |
| SGX SensorTech MiCS-4514 | MOS | 3 | [ | |
| Winsen MQ-7 | MOS | 1 | [ | |
| VOC | Sensirion SGP30 | MOS | 1 | [ |
| Sensirion SGPC3 | MOS | 1 | [ | |
| PM | Honeywell HPMA115S0 | LS | 1 | [ |
| Nova Fitness SDS-011 | LS | 1 | [ | |
| Plantower PMS3003 | LS | 3 | [ | |
| Plantower pms5003 | LS | 3 | [ | |
| Sharp Electronics GP2Y1010AU0F | LS | 3 | [ | |
| * TSI OPS3330 | LS | 1 | [ | |
| PM2.5 | Alphasense OPC-N2 | LS | 1 | [ |
| Plantower pms3003 | LS | 4 | [ | |
| * RTI International MicroPEM | LS | 1 | [ | |
| * Sailbri Cooper Inc SCI-608 | LS | 1 | [ | |
| Sharp DN7C3CA006 | LS | 2 | [ | |
| Shinyei PPD42NS | LS | 1 | [ | |
| Shinyei PPD60PV- T2 | LS | 2 | [ | |
| PM10 | * Sailbri Cooper Inc SCI-608 | LS | 1 | [ |
|
| ||||
| T–RH | Adafruit AM2302 | CS–TH | 1 | [ |
| Aosong Electronics DHT22 | CS-TH | 1 | [ | |
| CMOS sensor (HTU-21D) | CS-TH | 1 | [ | |
| Cozir AH-1 | ND | 1 | [ | |
| * Sailbri Cooper Inc SCI-608 | ND | 1 | [ | |
| Sensirion SCD30 | CS-SBG | 1 | [ | |
| Sensirion SHT15 | CS-SBG | 2 | [ | |
| Sensirion SHT31 | CS-SBG | 1 | [ | |
| Sensirion SHT75 | CS-SBG | 1 | [ | |
| SST sensing CO2S-A | ND | 1 | [ | |
| Texas Instruments HDC1080 | CS-TH | 1 | [ | |
| GC | G.TOP FGPMMOPA6H | GPS | 1 | [ |
| Adafruit Ultimate GPS chip | GPS | 1 | [ | |