Javascript must be enabled to continue!
Sonication‐Assisted Palladium Nanogaps in a Capacitive Structure: A Tunable and Reliable Solution for Sensitive Hydrogen Monitoring
View through CrossRef
Abstract
Pd nanogap hydrogen sensors rapidly and selectively detect H
2
through hydrogenation‐induced volumetric expansion of the Pd lattice. However, this type of resistive sensor faces challenges in ensuring reliability due to the difficulty of precisely controlling nanogaps formed within the potential conduction paths. Herein, a novel H
2
sensor is proposed that utilizes a capacitive mechanism to substantially improve both sensitivity and reliability. Simple ultrasonication is employed to create Pd seed cracks, which evolve into uniform nanogap networks following initial phase transitions (α‐PdH → β‐PdH). In the Pd/PDMS/Doped‐Si system, capacitive response driven by the area change of the upper electrode accurately reflects real‐time nanogap behavior in response to H
2
, producing stable signals within a defined range of values. The initial crack density, adjustable by varying the sonication time, allows for customizable gap sizes and detection ranges, achieving sub‐20 nm gaps and an ultra‐low detection limit of 3 ppm. Repeatability tests using 300 ppm H
2
over 50 cycles demonstrate exceptional durability and signal stability at low concentrations, surpassing previous Pd nanogap sensors. This capacitive sensor provides a reliable and adaptable solution for H
2
detection, marking a significant advancement toward commercializing Pd nanogap sensors.
Title: Sonication‐Assisted Palladium Nanogaps in a Capacitive Structure: A Tunable and Reliable Solution for Sensitive Hydrogen Monitoring
Description:
Abstract
Pd nanogap hydrogen sensors rapidly and selectively detect H
2
through hydrogenation‐induced volumetric expansion of the Pd lattice.
However, this type of resistive sensor faces challenges in ensuring reliability due to the difficulty of precisely controlling nanogaps formed within the potential conduction paths.
Herein, a novel H
2
sensor is proposed that utilizes a capacitive mechanism to substantially improve both sensitivity and reliability.
Simple ultrasonication is employed to create Pd seed cracks, which evolve into uniform nanogap networks following initial phase transitions (α‐PdH → β‐PdH).
In the Pd/PDMS/Doped‐Si system, capacitive response driven by the area change of the upper electrode accurately reflects real‐time nanogap behavior in response to H
2
, producing stable signals within a defined range of values.
The initial crack density, adjustable by varying the sonication time, allows for customizable gap sizes and detection ranges, achieving sub‐20 nm gaps and an ultra‐low detection limit of 3 ppm.
Repeatability tests using 300 ppm H
2
over 50 cycles demonstrate exceptional durability and signal stability at low concentrations, surpassing previous Pd nanogap sensors.
This capacitive sensor provides a reliable and adaptable solution for H
2
detection, marking a significant advancement toward commercializing Pd nanogap sensors.
Related Results
Vers la mesure de nano-objets uniques, réalisation de nanogaps par électromigration
Vers la mesure de nano-objets uniques, réalisation de nanogaps par électromigration
Au cours de ce travail de thèse, nous avons étudié la formation de nanogaps par électromigration dans des nanofils d'or. Cette technique consiste à provoquer la rupture d'un nanofi...
Elucidating hydrogen-solid interactions using computational modeling
Elucidating hydrogen-solid interactions using computational modeling
Hydrogen has significant chemical utility, both as a synthetic reagent and as an energy carrier. As the world moves away from fossil fuels being the predominant energy carrier, the...
The Sonodegradation of a Petrochemical Industry Wastewater
The Sonodegradation of a Petrochemical Industry Wastewater
In this study, the effects of increasing sonication times (0 min, 60 min, 120 and 150 min), sonication temperatures (25oC, 30oC and 60oC), increasing titanium dioxide (TiO2) (0.1 ...
Crack-Engineered Palladium Nanocrack Networks for Trace-to-Leak Hydrogen Monitoring under Ambient Conditions
Crack-Engineered Palladium Nanocrack Networks for Trace-to-Leak Hydrogen Monitoring under Ambient Conditions
Conventional palladium (Pd) nanogap hydrogen sensors generally operate through abrupt electrical switching induced by hydrogen-driven gap closure, which limits stable low-concentra...
Contribution of Severe Plastic Deformation via High-Pressure Torsion to the Hydrogen Cycle: From Hydrogen Production and Storage to Hydrogen Embrittlement
Contribution of Severe Plastic Deformation via High-Pressure Torsion to the Hydrogen Cycle: From Hydrogen Production and Storage to Hydrogen Embrittlement
Hydrogen is a key energy carrier for achieving carbon neutrality, yet its widespread deployment is hindered by challenges associated with efficient hydrogen production, safe and re...
Research progress of hydrogen tunneling in two-dimensional materials
Research progress of hydrogen tunneling in two-dimensional materials
One-atom-thick material such as graphene, graphene derivatives and graphene-like materials, usually has a dense network lattice structure and therefore dense distribution of electr...
The Extension of Opportunities of Dual Fuel Diesel-Hydrogen Engine by Usage of Hydrotreated Vegetable Oil
The Extension of Opportunities of Dual Fuel Diesel-Hydrogen Engine by Usage of Hydrotreated Vegetable Oil
"This paper investigates further development of a diesel-hydrogen dual fuel concept of engine of passenger car size via hydrotreated vegetable oil (HVO). The diesel-hydrogen concep...
Hydrogen bond donors in drug design
Hydrogen bond donors in drug design
In medicinal chemistry, hydrogen bond donors are seen to cause more problems than hydrogen bond acceptors and this study examines hydrogen bond donor-acceptor asymmetries in the co...

