Michelle Ntola | Integrated Graphene (iGii): What if you could print a customizable, flexible 1.5V battery directly onto a device using a high-surface-area graphene foam as the current collector?
06:55.595 - 08:11.045
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Summary of the clip:
What if you could print a customizable, flexible 1.5V battery directly onto a device using a high-surface-area graphene foam as the current collector?
Moving beyond sensing, this clip explores the use of G-material in the field of printed and additive electronics, specifically for energy storage. Integrated Graphene has developed and demonstrated fully printed batteries based on a stable and safe zinc-manganese chemistry. The manufacturing process allows the battery design to be completely customizable, enabling integration into novel form factors for wearables and other compact devices.
The battery's architecture is designed to leverage the unique properties of the G-material. The active cathode material, manganese dioxide, is deposited directly onto the high-surface-area G-foam via electrodeposition. In this configuration, the 3D carbon foam acts as a highly efficient, lightweight current collector that enables the battery's high power performance and stable discharge profile.
The performance metrics are well-suited for low-power electronics and IoT applications. These printed batteries exhibit a nominal voltage of 1.5V, a specific area capacity of 2.4 milliamp-hours per square meter, and high current capacity retention across various discharge rates. This combination of customizable form factor and reliable performance makes them an ideal power source for the next generation of smart, connected devices.
In this short video, you can learn:
* The design and chemistry (Zinc-Manganese) of a fully printed, customizable battery.
* How G-material's high surface area is leveraged for electrodepositing the active material and enhancing power performance.
* Key performance metrics including nominal voltage (1.5V) and specific area capacity (2.4 mAh/m²), and their relevance for IoT.
📋 **Clip Abstract** This clip details the development of customizable, printed batteries using Integrated Graphene's G-material. Learn about the zinc-manganese chemistry, the role of the 3D carbon foam as a current collector, and the key performance metrics that make it suitable for wearables and IoT.
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#PrintedBatteries, #GrapheneFoamCurrentCollector, #ZincManganeseChemistry, #ManganeseDioxideElectrodeposition, #WearableElectronics, #IoTApplications
This is a highlight of the presentation:
Revolutionsing Functional Devices : A Scalable 3D Carbon Nanomaterial Platform for Next-Generation Applications
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00:04:00 - 00:05:42
Can we integrate 3D nanocarbons directly onto silicon and metal foils without binders?
Can we integrate 3D nanocarbons directly onto silicon and metal foils without binders?
Engineered three-dimensional nanocarbons (Gii) offer a paradigm shift over conventional 2D graphene. By operating as a binder-free, 3D hierarchical porous matrix, this material achieves a massive active surface area of 300 to 400 square meters per gram. This structural configuration delivers exceptional electrical and thermal conductivity while remaining chemically inert and intrinsically resistant to biofouling.
The primary manufacturing breakthrough lies in the direct growth of Gii onto targeted substrates without relying on additives, polymer binders, or transfer processes. This eliminates interface degradation and contact resistance issues common in exfoliated or CVD graphene transfers. Recent capabilities demonstrate successful growth on polyimide, aluminum foil, nickel foil, and standard silicon wafers.
Such versatility makes this binder-free carbon nanomaterial highly adaptable for micro-devices. By eliminating the transfer step, developers can integrate high-performance carbon directly into semiconductor-compatible backplanes, thermal management layers, and localized electrochemical biosensing arrays.
In this short video, you can learn:
* How 3D nanocarbons achieve 300-400 m²/g surface area without sacrificing electrical conductivity.
* The integration advantages of growing carbon nanomaterials directly on nickel, aluminum, and silicon.
* Why binder-free, transfer-free carbon growth prevents interface degradation.
📋 **Clip Abstract** This clip details the physical and chemical properties of Gii, a 3D nanocarbon grown directly onto diverse substrates like polyimide, metal foils, and silicon. The absence of polymer binders or additives yields a highly conductive, biofouling-resistant platform optimized for microelectronics and sensor integration.
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#3DNanocarbon, #BinderFreeGrowth, #TransferFreeGraphene, #DirectGrowthOnSilicon, #ElectrochemicalBiosensors, #FlexibleElectronics
00:11:13 - 00:12:52
How do we detect lead in water down to 3.5 parts per billion without toxic mercury coatings?
How do we detect lead in water down to 3.5 parts per billion without toxic mercury coatings?
Heavy metal electrochemical sensors traditionally rely on toxic mercury coatings to facilitate the reduction and stripping of metal ions. By replacing these legacy materials with an engineered 3D nanocarbon (Gii) working electrode, sensing devices can achieve ultra-low limits of detection safely. Integrated into an interdigitated electrode (IDE) platform with built-in reference and counter electrodes, Gii acts as an exceptional electron-transfer scaffold.
This sensor achieves a lead (Pb) limit of detection of just 3.5 parts per billion (ppb) and a limit of quantification of 5.0 ppb. This performance easily meets the current World Health Organization limit of 10 ppb for drinking water, as well as the strict upcoming 2036 European regulatory threshold of 5 ppb.
The combination of high surface area, fast electron kinetics, and the binder-free nature of grown Gii eliminates diffusion limitations. This allows the system to return highly accurate, quantifiable heavy metal concentration readouts within five minutes, presenting a clean, fast, and regulatory-ready solution for environmental monitoring.
In this short video, you can learn:
* How Gii-based interdigitated electrodes eliminate the need for hazardous mercury coatings in heavy metal sensing.
* The electrochemistry enabling a lead detection limit of 3.5 ppb in under five minutes.
* How the 3D nanocarbon platform aligns with the upcoming European regulatory transition down to 5 ppb.
📋 **Clip Abstract** This clip details a portable lead detector in water utilizing a Gii-functionalized interdigitated electrode. The system achieves a 3.5 ppb limit of detection without toxic mercury coatings, providing an environmentally safe, fast-response solution that matches upcoming strict EU standards.
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#3DNanocarbon, #InterdigitatedElectrodes, #ElectrochemicalSensing, #HeavyMetalSensing, #EnvironmentalMonitoring, #PrintedElectronics
00:06:08 - 00:08:26
Can a flexible nanocarbon micro-heater hit 400°C in just six seconds without hotspots?
Can a flexible nanocarbon micro-heater hit 400°C in just six seconds without hotspots?
Micro-heaters based on binder-free 3D nanocarbon (Gii) exhibit remarkable thermal dynamics due to their low thermal mass and high electrical conductivity. Grown directly on a polyimide substrate, these heaters achieve temperatures exceeding 400°C within six seconds. The thermal time constant—the time required to reach 63% of the target temperature—is an exceptionally low 1.5 seconds.
Crucially, the Gii material boasts a Negative Temperature Coefficient of resistance (NTC). As the micro-heater element heats up, its electrical resistance drops, creating a self-accelerating electrothermal effect. When coupled with an active closed-loop control system, this characteristic allows for incredibly fast, precise, and uniform thermal cycling.
Because the material contains zero polymer binders, its maximum operating temperature is constrained only by the underlying substrate. When grown on polyimide, the recommended continuous operating temperature is 360°C, with short bursts up to 410°C. Transitioning to thermally stable inorganic substrates unlocks even higher operating windows, perfect for MEMS, gas sensors, and microfluidic thermal cyclers.
In this short video, you can learn:
* The thermal kinetics of binder-free Gii micro-heaters reaching 400°C in under six seconds.
* How the Negative Temperature Coefficient of resistance enables a self-accelerating heating effect.
* The performance limits of flexible carbon heaters and how substrate selection defines continuous operating temperatures.
📋 **Clip Abstract** This segment explores the development of Gii-based micro-heaters that provide high-speed, uniform heating up to 410°C. By leveraging a low thermal time constant of 1.5 seconds and a negative temperature coefficient of resistance, these flexible heaters achieve rapid, highly-controlled thermal cycles.
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#3DNanocarbon, #FlexibleMicroheaters, #NegativeTemperatureCoefficient, #ElectrothermalDynamics, #FlexibleElectronics, #Microfluidics




