Texas gas detection partnership announced by Teledyne and Andon Specialties

Teledyne Gas and Flame Detection has announced a Texas gas detection partnership with Andon Specialties to expand distribution and technical support for fixed gas detection solutions across the state’s oil and gas sector

Teledyne Gas and Flame Detection (Teledyne GFD) has announced a Texas gas detection partnership with Andon Specialties to expand access to its Teledyne Detcon fixed gas detection solutions across the state’s oil and gas sector.

Effective immediately, Andon Specialties will provide local sales and technical support for Teledyne Detcon’s fixed gas detection portfolio, helping operators protect personnel, assets and critical infrastructure in demanding industrial environments. The partnership combines Teledyne Detcon’s manufacturing and engineering expertise with Andon Specialties’ established customer relationships and technical support network throughout Texas.

Shannon Sanders, Vice President of Sales and Marketing, Americas at Teledyne Gas and Flame Detection, said: “We are delighted to partner with Andon Specialties to strengthen our support for customers across the Texas market. By blending Teledyne Detcon’s proven fixed gas detection technologies with Andon’s extensive local knowledge and technical expertise, we are making it easier for operators to access dependable safety solutions backed by responsive service and application support.”

Teledyne Detcon has designed and manufactured industrial-grade gas detection systems for more than 40 years from its ISO 9001-certified manufacturing facility in Cypress, Texas. The site produces more than 15,000 gas detectors annually, supplying customers worldwide with US-manufactured gas detection solutions.

Together, Teledyne Detcon and Andon Specialties bring more than 70 years of combined experience serving the oil and gas industry. Through the partnership, the companies aim to help operators meet stringent safety requirements with local technical expertise and proven gas detection technologies.

Among the products available through the agreement is the GD10P infrared point gas detector, designed for combustible gas detection applications. The detector offers rapid response times, long-term stability and low maintenance requirements.

Kent Kesler, Vice President of Business Development at Andon Specialties, said: “We are pleased to partner with Teledyne Gas and Flame Detection to expand access to the Teledyne Detcon fixed gas detection portfolio across Texas. Together, we can provide customers with dependable safety solutions backed by responsive technical support and a shared commitment to protecting people, facilities, and operations.”

Discover the new Sensitron gas detection control panel

Strong heritage, new design.

Sensitron is a global gas detection company whose product range includes fixed gas detection systems, detectors, and control panels for all applications.

Committed to innovation, Sensitron previews its new control panel for reliable gas detection systems with up to eight gas detectors, which will be commercially available within 2026.

Grounded in Sensitron’s heritage, it evolves from the best-selling PL4+, preserving the proven reliability that has always defined Sensitron systems. Built around the needs of those who work with it every day, the new control panel introduces a new user-oriented design approach, expressed through an essential form and a completely redesigned interface: more modern, readable, and intuitive, delivering a simpler operation and a tangible improvement in the on-site user experience.

“We chose design as a strategy to complement our technical expertise, adding an element of differentiation in a highly competitive market.” explains Marco Passadori, Managing Director of Sensitron. “The decision to introduce design stems from listening to those who use the product. From our ongoing dialogue with customers came the desire to create a control panel truly designed for its users.”

Beyond design, the new control panel introduces a completely redesigned interface. New elements — including graphics, pop-ups, directional arrows, on/off switches, drop-down menus and contextual buttons — help users understand how the control panel works more quickly, without the need for prior knowledge. Menus are organised according to a logical tree structure, enabling intuitive navigation and immediate access to functions exactly where users expect to find them.

It complies with ATEX Directive 2014/34/EU, as well as the main performance and functional safety standards, including EN IEC 60079-29-1 and EN 61508 / EN 50402 (SIL1).

With this new control panel, Sensitron introduces a new language into the world of gas detection, continuing to demonstrate its ability to innovate within a highly specialised and regulated market, without losing sight of its roots.

Gasmet launches a rack-mountable FTIR gas analyser

Gasmet Technologies has released the GT7000 Tellus, a rack-mountable FTIR gas analyser for multi-gas analysis.

Designed for system-level use

GT7000 Tellus supports reliable gas analysis in conditions where stability, repeatability and integration are essential.

The company highlighted that the analyser is suited for changing process conditions and continuous or repeated measurement requirements.

Typical applications include process gas analysis, emissions monitoring, laboratory testing and validation, combustion research, carbon capture and CO₂ purity monitoring, as well as air quality monitoring.

“Continuous or repeated gas analysis”

Jyrki Korpela, Director of Product Management, Gasmet Technologies stated: “GT7000 Tellus is designed for applications where gas analysis must operate reliably as part of a defined system and measurement workflow.

“The rack-mountable format supports integration into measurement systems, and the analyser can be configured for different setups where continuous or repeated gas analysis is required.”

Multi-gas analysis capability

GT7000 Tellus enables simultaneous measurement of up to 50 gases from a wide gas library, including 500 quantifiable and 5000 identifiable gases.

Combined with Calcmet 16 software, it supports analysis of complex gas mixtures with instant gas concentration results, data connectivity and identification of unknown gases.

Measurement setups can be configured through software without hardware changes.

The rack-mountable format enables installation alongside other instruments as part of a broader measurement setup.

Measurement conditions can be configured with selectable temperatures, optical path lengths and pressure compensation options.

Proven FTIR technology

According to the company, the measurement capability is based on Gasmet FTIR technology, with performance validated through EN15267‑4 QAL1 certification of the GT6000 Mobilis platform.

GT7000 Tellus builds on 35 years of in‑house FTIR development and application expertise, with over 7 000 analyzers delivered worldwide.

The same measurement approach is used across laboratory testing, process applications, research and environmental monitoring, Gasmet added.

“Continues the next generation product family”

Nenne Nordström, CEO, Gasmet Technologies commented: “It is great to see how we can respond to customer needs across different applications with the same core technology.

“GT7000 Tellus builds on proven FTIR technology and continues the next generation product family defined by GT5000 Terra and GT6000 Mobilis, supporting the use of FTIR-based gas analysis in the field, in testing and in fixed system setups,” he concluded.

Li-ion BESS fire safety standards: how off-gas detection is reshaping battery safety regulations

As lithium-ion Battery Energy Storage System (BESS) deployments accelerate worldwide, Honeywell explains how evolving Li-ion BESS fire safety standards and off-gas detection technologies are transforming thermal runaway prevention and regulatory compliance

The global stationary lithium-ion (Li-ion) Battery Energy Storage System (BESS) market is entering a period of rapid expansion. Driven by net-zero commitments, grid modernisation and surging energy demand linked to AI infrastructure and data centres, the sector is expected to grow at more than 18.5%  annually through 2034, according to Global Market Insights.

But as deployment accelerates, so too does scrutiny of one of the sector’s biggest risks: thermal runaway.

Until recently, the stationary BESS industry operated in a relatively underdeveloped regulatory environment, despite the growing use of large-scale lithium-ion battery systems in utilities, data centres, telecoms and commercial infrastructure.

That began to change in 2020 with the introduction of new off-gas detection technologies capable of identifying electrolyte solvent vapours released before thermal runaway begins.

These systems represented a significant shift in fire safety strategy. Rather than relying solely on conventional fire suppression, ventilation or flammable gas detection, the industry began focusing on earlier intervention.

This technological development has since influenced a wave of new fire safety standards, product certifications and building codes aimed specifically at Li-ion BESS risks.

For fire safety engineers, OEMs, system integrators and BESS operators, understanding this evolving regulatory landscape is now critical to ensuring compliance and future-proofing installations.

Why Li-ion BESS thermal runaway demands a new fire safety approach

Thermal runaway remains the defining fire hazard in lithium-ion battery systems. Before thermal runaway, lithium-ion cells  typically vent trace amounts of electrolyte vapours and volatile organic compounds (VOCs). Detecting these early warning signs can provide a critical intervention window (in some cases up to 30 minutes) to isolate affected batteries, stop charging and activate ventilation.

This shift from reaction to prevention is now being embedded into standards worldwide.

How NFPA and UL standards are reshaping Li-ion BESS fire safety

The US-based National Fire Protection  Association (NFPA), whose standards are widely referenced globally, has been central to this regulatory evolution.

NFPA 855 has become the cornerstone standard for stationary energy storage installations. The updated edition introduced stronger requirements. Notably, Annex G of NFPA 855 explicitly recognises the limitations of Lower Explosion Limit (LEL) sensors and battery voltage monitoring as thermal runaway safeguards.

Instead, the guidance highlights off-gas monitoring as one of the most effective methods for early detection, stating that cell-level detection close to or inside battery modules provides the most reliable pre-thermal-runaway warning.

The standard also notes that early detection can enable electrical isolation of affected cells, potentially stopping overheating before escalation.

NFPA 75 addresses lithium-ion battery fire risks in data centres

The rapid growth of AI and hyperscale data centres has increased reliance on lithium-ion Uninterruptible Power Supplies (UPSs), bringing new fire risks into critical digital infrastructure.

Reflecting this, the 2024 edition of NFPA 75, covering fire protection of information technology equipment, introduced off-gas detection requirements for Li-ion UPS systems for the first time.

The standard specifies that approved systems must monitor for electrolyte vapour released prior to thermal runaway and be installed according to manufacturer instructions.

Importantly, NFPA 75 also clarifies that conventional flammable gas sensors are not suitable substitutes. At early off-gas stages, released vapours occur only in trace concentrations – often at ppm or ppb levels – far below thresholds designed for explosion prevention.This means specialised off-gas detection is necessary.

NFPA 76 strengthens Li-ion battery fire safety for telecom facilities

Similar revisions were made to NFPA 76, which governs telecommunications facilities.

The 2024 update requires approved systems to monitor electrolyte vapour release in battery installations above 20kWh where batteries are grouped within close proximity.

Upon detection, systems must automatically stop charging affected batteries and disconnect them from load.

Again, the standard reinforces that traditional flammable gas sensors are insufficient for thermal  runaway detection.

NFPA 400 ventilation requirements for Li-ion BESS fire safety

The NFPA 400 Hazardous Materials Code (2025) adds another important dimension, requiring exhaust ventilation systems to account for the density of potential vapours released from hazardous materials.

Off-gas detection systems can support compliance by automatically

triggering ventilation when electrolyte vapours are detected.

Li-ion BESS product certification evolves with fire safety standards

Alongside installation standards, product certification requirements are becoming more rigorous. The recently revised UL 2075 Gas and Vapor Detectors and Sensors standard introduces updated requirements covering detector design, construction and performance.

For off-gas detection manufacturers, this creates a clearer pathway for third-party validation of systems designed to detect lithium-ion electrolyte vapours, hydrogen and carbon monoxide.

How insurers are driving higher Li-ion BESS fire safety standards

Insurance providers have also emerged as influential drivers of BESS safety best practice.FM Global’s Property Loss Prevention Data Sheets 5-33, widely referenced by industrial operators and insurers, provide guidance for the design, operation and protection of stationary Li-ion BESSs.

The 2023 revision introduced new recommendations for thermal runaway prevention. Section 2.5.3.3 calls for early intervention systems capable of automatically and electrically isolating affected batteries when cell temperatures exceed thresholds and VOCs indicate pre-thermal[1]runaway venting.

The guidance requires FM approved VOC detectors which the new FM Approvals Standard 6540 fulfils with the establishment of dedicated testing and verification criteria for off-gas detectors certification.

This reflects growing insurer demand for independently verified detection performance in high-risk energy installations.

Why early off-gas detection is becoming central to BESS fire safety

Europe has also been active in formalising guidance around lithium-ion battery fire risks.The UK’s Fire Industry Association (FIA) was among the earliest organisations to formally endorse off-gas detection.

Its 2020 guidance on Li-ion battery fires concluded that systems capable of detecting low-concentration off-gases can provide early warning of impending thermal runaway and trigger shutdown systems to electrically isolate battery racks before escalation.

It also emphasises strategic sensor positioning to account for cooling airflow and the use of reference sensors to reduce false alarms.Meanwhile, the UK Fire Protection Association’s Need to Know Guide RE1 recommends early detection of off-gases or electrolyte vapours for critical and significant BESS installations, linked directly to shutdown and disconnection systems.

Together, these documents signal a broader European shift toward integrating early gas detection into battery fire protection strategies.

How local fire codes are strengthening Li-ion BESS safety requirements

Beyond standards bodies, regional building and fire codes are increasingly codifying these requirements. Among the earliest examples was the 2022 Connecticut State Fire Safety Code, which introduced provisions requiring systems capable of detecting electrolyte vapours at the start of battery venting, automatically shutting down affected BESS racks, transmitting fire alarm signals and activating mechanical ventilation.

Austin City Council’s 2024 Technical Building Codes, effective from July 2025, include similar requirements. For lithium-ion BESS installations above 20kWh, systems must include off-gas detection that both operates independently from the Battery

Management System (BMS) and identifies the affected rack. These provisions suggest local codes may act as regulatory accelerators, particularly in jurisdictions with fast-growing battery deployment.

New research supports off-gas detection for Li-ion BESS safety

Academic and industry research is also reinforcing the importance of early detection. A DNV study found that off-gas detection combined with automated shutdown protocols can prevent thermal runaway progression.

“Importantly, NFPA 75 also clarifies that conventional flammable gas sensors are not suitable substitutes.”

Separately, a 2024 study showed that commercial VOC sensors consistently triggered during cell venting events, even in large battery packs.

Research supported by UL Research Institutes and ESRI is also exploring improved off-gas monitoring in BESS applications, suggesting standards may become more prescriptive.

So, the stationary lithium-ion BESS sector is no longer operating in a regulatory vacuum Across North America and Europe, fire safety standards, insurer requirements and local building codes are converging around a common conclusion: early detection of electrolyte vapours is essential for mitigating thermal runaway risk.

For developers, operators and manufacturers, this means compliance is no longer simply about installing suppression systems or meeting baseline fire codes. It increasingly requires a proactive safety architecture built around prevention, early warning and automated intervention.

Supporting Li-ion BESS compliance through early off-gas detection

Honeywell’s Li-ion Tamer has emerged as one of the best-known systems designed specifically to address the early detection requirements now referenced across multiple standards and guidance documents.

Unlike conventional flammable gas detection, Li-ion Tamer is engineered to identify trace levels of electrolyte vapours released during the earliest stages of battery cell failure, before thermal runaway occurs.

This enables operators to respond earlier through shutdown, electrical isolation and ventilation strategies, helping reduce the risk of escalation. The system has been referenced throughout the industry’s regulatory evolution because it addresses a critical gap in traditional battery fire protection approaches: detecting battery distress before smoke, heat or explosive gas concentrations are present.

As BESS deployments expand into utilities, data centres, telecoms and commercial buildings, early intervention is becoming central to fire safety design. Solutions such as Li-ion Tamer can help operators and system integrators align installations with increasingly specific requirements around off-gas detection, rack-level monitoring and automated response protocols.

With regulatory scrutiny increasing, technologies that support earlier warning and actionable intervention are likely to play a growing role in helping the industry build safer, more resilient energy storage infrastructure

Hydrogen detection deal adds new technology to Consilium portfolio

Consilium expands hydrogen detection portfolio

Consilium Safety Group has acquired all assets and intellectual property related to Insplorion AB’s hydrogen sensor technology business following approval at an extraordinary general meeting held on April 13.

Consilium announced the acquisition as part of its gas safety work for marine, critical infrastructure and energy-related applications.

The transaction includes Insplorion’s hydrogen sensor NPS-P2 and an ongoing certification process linked to the product.

The company said the acquisition adds hydrogen detection technology and related expertise to its existing safety portfolio.

Consilium deal includes NPS-P2 and certification process

The acquisition includes the NPS-P2 hydrogen sensor, which is described as having documented performance in demanding environments.

It also includes an ongoing certification process intended to open access to the marine sector and regulated industrial environments globally.

Consilium said it is positioned to take over that process and move the product towards full-scale commercialisation through its distribution network and brand presence in the safety sector.

Philip Isell Lind af Hageby, President and CEO, Consilium Safety Group, said: “For us, this is a strategic investment in the safety of tomorrow.

“With a sophisticated sensor technology and a capable team, that we are delighted to partner up with, we are now stepping straight to the forefront of hydrogen detection and strengthening our position as an industry pioneer,”

The acquisition was conditional on approval from an extraordinary general meeting of Insplorion AB, which was obtained on April 13.

Fixed gas and flame detection hub launched by MSA Safety

MSA Safety launches FGFD information page

MSA Safety (MSA) has launched a new Fixed Gas & Flame Detection (FGFD) Solutions webpage as a dedicated online resource for detection systems.

The page is intended to support safety management in oil & gas facilities, chemical plants and new energy sites, bringing together expert insights, technology overviews and service offerings in one place.

It is presented as a resource to help users improve reliability and make more informed decisions about gas and flame detection systems.

Detection systems and named experts

The page includes contributions from Darin Brame, Global Sales Director, Fixed Gas & Flame Detection, Scott Wilkie, Business Director EMEA & APAC, Fixed Gas & Flame Detection, Merin Joseph, Proposal Engineer – Projects, Fixed Gas & Flame Detection, Chandan Das, Business Development Manager, International, New Energies, Edwin Choo, Functional Safety Engineer, Fixed Gas & Flame Detection and George Zhang, Sales Director, China, Fixed Gas & Flame Detection.

MSA has also introduced the TG5000 Gas Monitoring System, described as a general-purpose, self-contained solution designed to detect a range of gases using XCell sensor technology.

The TG5000 is presented as requiring minimal installation and offering flexible configuration options for wastewater treatment facilities, commercial and public buildings and light industrial environments.

MSA fixed detection portfolio and tools

In other news, the company has updated its online Total Cost of Ownership calculator for point gas detection, allowing comparison of ULTIMA X5000 and General Monitors S5000 detectors against other manufacturers.

The calculator is described as providing indicative figures based on market knowledge and includes adjustable inputs such as installation, replacement sensors and calibration gas.

MSA has also published a whitepaper on XCell sensor technology for fixed gas detection, outlining applications and performance in industrial environments.

A recorded panel discussion on hydrogen storage in salt caverns hosted by Mission Hydrogen is now available, featuring Jack Samways, Business Development Manager – New Energies, Europe at MSA Safety.

Finally, MSA has released an updated version of the X/S Connect app, supporting connectivity for ULTIMA X5000, General Monitors S5000 and TG5000 gas monitors through a mobile interface.

Honeywell launches gas sensor for fixed and portable detectors

Gas sensor launch for industrial detection

Honeywell has introduced a new gas sensor that uses optical non-dispersive infrared technology to detect flammable gases in industrial settings.

The NDIR Hydrocarbon Gas Sensor is designed to detect gases such as methane, propane and butane in sectors including mining, oil and gas, petrochemical and plastics manufacturing.

The company said the 4-Series NDIR Hydrocarbon Gas Sensor is designed to integrate into fixed gas detectors and portable units carried by workers in the field, deep underground or within a processing facility.

Honeywell stated that the sensor is intended for use in detectors that alert workers to potential exposure to hazardous gases.

Gas sensor design details for harsh settings

According to Honeywell, the sensor is designed for harsh conditions including dust in mines, methane leaks and extreme indoor versus outdoor temperature fluctuations.

The company said it includes an integrated condensation reduction system to clear excess moisture and maintain performance in humid environments and confined spaces such as refineries.

Honeywell also stated that the sensor has high poisoning resistance, which it said limits the risk of sensor failure and reduces instances of false positives.

The company said the infrared technology allows the sensor to consume less power than traditional flammable gas sensors, extending operational lifespan and prolonging a portable gas detector’s battery.

Gas detection update from Sensitron adds new interface and login system

Sensitron previews redesigned gas detection control panel

Sensitron has previewed a new control panel for gas detection systems that can support up to eight gas detectors and is set to be commercially available within 2026.

Sensitron said the product evolves from its best-selling PL4+ and was developed as part of a broader product and business development plan.

The company said the control panel was designed around day-to-day use, with a more compact form and a redesigned interface intended to improve readability and operation on site.

The new PL4 gas detection system design was developed through Sensitron’s first collaboration with AMDL CIRCLE, the multidisciplinary studio founded by Michele De Lucchi.

Sensitron said the resulting platform was designed to be adapted and customised for the group’s international markets.

Nicholas Bewick, Architecture Art Director, and Andrea Borgogni, Senior Product Designer, at AMDL CIRCLE, said: “The design is the result of a complete reconfiguration of the internal components—battery, printed circuit boards, mounting systems, etc. – arranged according to a new hierarchical order: the reorganisation of the elements has allowed the creation of an unusual pyramidal architectural form, with a redesigned main display and control panel to simplify the physical and visual interface with the entire gas safety network.”

Interface changes and compliance details

Sensitron said the new control panel includes a redesigned interface with graphics, pop-ups, directional arrows, on/off switches, drop-down menus and contextual buttons.

The company said these features are intended to help users understand the control panel more quickly without prior knowledge.

A multi-level digital login system replaces the physical key and is intended to provide greater operational control, traceability and protection.

Menus are arranged in a logical tree structure and the control panel can be configured through the display or through a PC.

PC-based configuration allows settings to be saved and replicated across similar systems, with event logs available for download for diagnostic analysis and system traceability.

Marco Passadori, Managing Director of Sensitron, said: “We chose design as a strategy to complement our technical expertise, adding an element of differentiation in a highly competitive market.

“Technology, compliance with standards, and experience are the foundations of our product development.

“The decision to introduce design stems from listening to those who use the product.

“From our ongoing dialogue with customers came the desire to create a control panel truly designed for its users.”

The control panel complies with ATEX Directive 2014/34/EU and the standards EN IEC 60079-29-1 and EN 61508 / EN 50402 (SIL1), according to Sensitron.

Teledyne GMI expands US gas utility distribution reach

Teledyne GMI expands Southeast support

Teledyne Gas Measurement Instruments (Teledyne GMI) has announced a partnership with Southern Cross, a Sparus company, to distribute its gas and leak detection portfolio to gas utility customers across the Southeast region of the United States.

The company said Southern Cross will also provide regional service support alongside the existing Teledyne GMI USA service centre in Cypress, Texas.

The agreement was announced from Renfrew, Scotland.

Teledyne GMI said the arrangement is intended to improve response times and technical support for customers using gas detection technologies in the region.

Teledyne GMI products and service scope

The portfolio covered by the distribution agreement includes the GS700, GS500, GT Series and PS200.

The company said the instruments are supported by its GDCloud platform, which provides centralised real-time access to field information.

It said the platform is used for fleet management, compliance reporting, preventive maintenance and operational decision-making.

Shannon Sanders, Vice President of Sales and Marketing, Americas, Teledyne Gas and Flame Detection, said: “We are pleased to offer our advanced detection solutions through Southern Cross.

“This partnership strengthens our ability to support U.S. gas utilities with local expertise, reliable service, and proven technologies.”

Southern Cross role in US rollout

Teledyne GMI said the partnership with Southern Cross brings combined sector experience in the gas utility market and extends its service presence in the United States.

Jody Boyles, Chief Sales & Marketing Officer, Sparus, said: “Through Southern Cross, Sparus has been protecting gas infrastructure since 1946.

“Partnering with Teledyne GMI as an authorized distributor brings together a combined 200 years of utility experience, so crews can work more safely and customers get faster access to the safety technology they rely on.”

Jeff Schechtman, Chief Operating Officer, Sparus, added: “This partnership creates access and support at a larger scale.

“With Sparus’ national field footprint, we’ll put Teledyne GMI portable gas detectors in technicians’ hands quickly with the training, service and coverage gas utilities expect.

“Anchored in our shared values of safety, innovation and integrity, we’re helping customers maintain their critical infrastructure and support efforts to reduce emissions.”

Hanbat National University study details dual-mode ammonia detection on skin

Ammonia sensor combines visual and electronic detection

A skin-worn wearable sensor has been presented that detects ammonia gas through both colour change and an electronic signal.

Hanbat National University (HBNU) researchers described the device in a study made available online on 18 August 2025 and published in Advanced Fiber Materials on 1 December 2025.

The study describes a flexible, stretchable sensor designed to work when attached to human skin and exposed to high humidity.

The platform combines a colourimetric readout with quantitative chemiresistive detection in a polymer nanofiber structure described as highly gas-permeable.

The study reports ppm-level sensitivity and stable performance under humidity and mechanical deformation.

How the dual-mode platform is intended to function

The study describes ammonia as widely used in fertilizers, refrigerants, biomarkers and next-generation fuel.

It states that ammonia is highly toxic and can cause respiratory irritation, chest pain, pulmonary edema and death.

The researchers describe a dual-mode approach that integrates chemiresistive sensing and colourimetric sensing in one device.

Professor Hyun Il Kang said: “Our device provides flexibility and facilitates efficient transport of NH3 between the bromocresol-green-based colorimetric and poly(3,4-ethylene dioxythiophene):poly(styrene sulfonate)-based chemiresistive sensing layers.

“This innovative dual-mode design enables reliable NH3 detection.”

The study states that each individual sensing layer performs on par with the dual-mode platform, with the device intended to remain accurate if one sensing mode fails.

It also describes operation while attached to human skin and in humid conditions.

Applications described in the study

The study lists potential uses including personal safety monitoring for workers in ammonia-handling facilities and industrial refrigeration and cold-chain environments.

It also lists agriculture and livestock operations where ammonia buildup occurs and noninvasive health screening via breath-NH3.

The study also cites vehicle energy systems using NH3 as another potential application.

The researchers describe the work as a basis for further development of the platform across biomedical, environmental monitoring and industrial use cases described in the paper.