Understanding the dynamic response of Durafet-based sensors: A case study from the Murderkill Estuary-Delaware Bay system (Delaware, USA). (5th April 2023)
- Record Type:
- Journal Article
- Title:
- Understanding the dynamic response of Durafet-based sensors: A case study from the Murderkill Estuary-Delaware Bay system (Delaware, USA). (5th April 2023)
- Main Title:
- Understanding the dynamic response of Durafet-based sensors: A case study from the Murderkill Estuary-Delaware Bay system (Delaware, USA)
- Authors:
- Gonski, S. Fisher
Ullman, William J.
Pettay, D. Tye
Booksh, Karl S.
Martz, Todd R.
Luther, George W.
Cai, Wei-Jun - Abstract:
- Abstract: The use of Durafet-based sensors has proliferated in recent years, but their performance in estuarine waters (salinity < 20) where rapid changes in temperature and salinity are frequently observed requires further scrutiny. Here, the responses of the Honeywell Durafet and its internal ( p H INT ) and external ( p H E X T ) reference electrodes integrated into a SeapHOx sensor at the confluence of the Murderkill Estuary and Delaware Bay (Delaware, USA) were assessed over extensive ranges of temperature (1.34–32.27°C), salinity (1.17–29.82), and rates of temperature ( d T/ d t; −1.46 to +1.53°C (0.5 h) −1 ) and salinity ( d Salt/ d t; −3.55 to +11.09 (0.5 h) −1 ) change. Empirical analyses indicated dynamic errors in the temperature and salinity responses of the internal and external reference electrodes, respectively, driven by tidal mixing were introduced into our pH time-series. These dynamic errors drove large anomalies between p H INT and p H E X T (denoted Δ p H INT − E X T ) that reached >±0.8 pH in winter when the lowest temperatures and maximum tidal salinity variability occurred and >±0.15 pH in summer when the highest temperatures and minimum tidal salinity variability occurred. The Δ p H INT − E X T anomalies demonstrated a clear linear relationship with d Salt/ d t thereby making d Salt/ d t the strongest limiting factor of reference electrode response in our application. A dynamic sensor response correction for the external reference electrodeAbstract: The use of Durafet-based sensors has proliferated in recent years, but their performance in estuarine waters (salinity < 20) where rapid changes in temperature and salinity are frequently observed requires further scrutiny. Here, the responses of the Honeywell Durafet and its internal ( p H INT ) and external ( p H E X T ) reference electrodes integrated into a SeapHOx sensor at the confluence of the Murderkill Estuary and Delaware Bay (Delaware, USA) were assessed over extensive ranges of temperature (1.34–32.27°C), salinity (1.17–29.82), and rates of temperature ( d T/ d t; −1.46 to +1.53°C (0.5 h) −1 ) and salinity ( d Salt/ d t; −3.55 to +11.09 (0.5 h) −1 ) change. Empirical analyses indicated dynamic errors in the temperature and salinity responses of the internal and external reference electrodes, respectively, driven by tidal mixing were introduced into our pH time-series. These dynamic errors drove large anomalies between p H INT and p H E X T (denoted Δ p H INT − E X T ) that reached >±0.8 pH in winter when the lowest temperatures and maximum tidal salinity variability occurred and >±0.15 pH in summer when the highest temperatures and minimum tidal salinity variability occurred. The Δ p H INT − E X T anomalies demonstrated a clear linear relationship with d Salt/ d t thereby making d Salt/ d t the strongest limiting factor of reference electrode response in our application. A dynamic sensor response correction for the external reference electrode (solid-state chloiride ion-selective electrode, Cl-ISE) was also developed and applied in the voltage domain. This correction reduced winter and summer Δ p H INT − E X T anomaly ranges by >40% and 68.7%, respectively. Summer anomalies were notably reduced to <±0.04 pH across all measurements. Further, this correction also removed the first-order salinity dependence of these anomalies. Consequently, dynamic errors in reference electrode response cannot be ignored and must be considered in future experimental designs. Further work to better understand the dynamic temperature and salinity responses of both reference electrodes is underway. Ultimately, we hope this work will stimulate further discussion around the role and treatment of large Δ p H INT − E X T anomalies as a part of future data quality control and data reporting as well as the dynamic errors in reference electrode response that drive them in the context of Sensor Best Practices. Highlights: A SeapHOx sensor package was deployed in a dynamic estuarine environment. The responses of the Durafet's internal and external reference electrodes were assessed. Previously unreported dynamic errors in their temperature and salinity responses were characterized. A dynamic sensor response correction for the external reference electrode was developed. … (more)
- Is Part Of:
- Estuarine, coastal and shelf science. Volume 283(2023)
- Journal:
- Estuarine, coastal and shelf science
- Issue:
- Volume 283(2023)
- Issue Display:
- Volume 283, Issue 2023 (2023)
- Year:
- 2023
- Volume:
- 283
- Issue:
- 2023
- Issue Sort Value:
- 2023-0283-2023-0000
- Page Start:
- Page End:
- Publication Date:
- 2023-04-05
- Subjects:
- pH -- ISFET -- Sensor -- Acidification -- Estuaries
Estuarine oceanography -- Periodicals
Coasts -- Periodicals
Estuarine biology -- Periodicals
Seashore biology -- Periodicals
Coasts
Estuarine biology
Estuarine oceanography
Seashore biology
Periodicals
551.461805 - Journal URLs:
- http://www.sciencedirect.com/science/journal/02727714 ↗
http://www.elsevier.com/journals ↗ - DOI:
- 10.1016/j.ecss.2023.108247 ↗
- Languages:
- English
- ISSNs:
- 0272-7714
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 3812.599200
British Library DSC - BLDSS-3PM
British Library STI - ELD Digital store - Ingest File:
- 26147.xml