4.5 Review

Laser induced graphanized microfluidic devices

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Tuning the Structure, Conductivity, and Wettability of Laser-Induced Graphene for Multiplexed Open Microfluidic Environmental Biosensing and Energy Storage Devices

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Summary: The study presents a scalable fabrication approach to create laser-induced graphene (LIG) with different electrical conductivity, surface morphology, and surface wettability. The LIG-based integrated microfluidics and electrochemical sensors demonstrated high sensitivities and low limits of detection for various ions and a pesticide. LIG was also used to create a high-performance micro supercapacitor with improved power density and energy density. This tunable fabrication approach is expected to have a wide range of applications in real-time health and environmental sensors as well as energy storage/harvesting modules.

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Highly responsive screen-printed asymmetric pressure sensor based on laser-induced graphene

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Summary: In this study, laser-induced graphene (LIG) powder is prepared into screen printing ink for the first time, enabling the fabrication of shape-controllable LIG patterned electrodes on various substrates using a facile screen printing process. The resulting flexible LIG screen-printed asymmetric pressure sensor exhibits excellent sensing properties, including high sensitivity, low detection limit, short response time, and long cycle durability.

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Internet of things-enabled photomultiplier tube- and smartphone-based electrochemiluminescence platform to detect choline and dopamine using 3D-printed closed bipolar electrodes

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Laser-induced graphene ablated polymeric microfluidic device with interdigital electrodes for taste sensing application

Mrunali D. Wagh et al.

Summary: The research introduces a microfluidic device with integrated microchannel and interdigitated electrodes based on capacitive sensing mechanism manufactured using the laser-induced graphene technique. The device demonstrated linear impedance change for different chemicals in the range of 1-1000 ppm under microfluidic conditions, with a minimum detection limit of 1 ppm. The microfluidic taste sensor has the potential to provide low-cost, simple-to-integrate multi-functional point-of-care sensors for human sensory tastes, clinical, and environmental applications.

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Laser-induced graphene (LIG)-based pressure sensor and triboelectric nanogenerator towards high-performance self-powered measurement-control combined system

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Summary: This article introduces a pressure sensor based on reduced graphene oxide and laser-induced graphene, and a high-performance self-powered measurement-control system constructed using this sensor, which has great potential for the development of wearable devices, smart skin, and human-computer interaction.

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Ultrasensitive and self-alarm pressure sensor based on laser-induced graphene and sea urchin-shaped Fe2O3 sandwiched structure

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Summary: A new sensor structure is designed in this study to achieve high-sensitivity and high-performance pressure sensors. The structure utilizes sea urchin-like Fe2O3 as a spacer layer sandwiched between two LIG/PI films. Additionally, a flexible multifunctional sensor with health monitoring and alarm functions is prepared based on the excellent properties of LIG. The sensor exhibits high sensitivity, integrated monitoring, and alarm functions.

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Summary: This study established a simple, customized, and economical laser-induced graphene (LIG) material using a CO2 laser, integrated into a microfluidic device for Enzymatic Biofuel Cell (EBFC) application. The modified C-LIG electrodes showed improved performance and enzyme stability, generating higher power density compared to LIG electrodes. The novel platform provides a simple and quick fabrication method with potential for further optimization and improvements in power output.

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Laser-induced graphene non-enzymatic glucose sensors for on-body measurements

Jia Zhu et al.

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Miniaturized Electrochemiluminescence Platform With Laser-Induced Graphene Electrodes for Multiple Biosensing

Manish Bhaiyya et al.

Summary: This study demonstrates a miniaturized 3D printed Electrochemiluminescence (ECL) sensing platform with Laser-Induced Graphene (LIG) based Open Bipolar Electrodes (OBEs), which can detect substances such as hydrogen peroxide and glucose with low cost, rapid realization, and miniaturization.

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Ronggang Han et al.

Summary: The study introduces a highly sensitive graphene-based temperature sensor with high sensitivity, resolution, and advantages of large-scale preparation and low cost. The sensor can be applied in health monitoring, such as skin temperature detection.

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Summary: Research introduces an all-in-one planar micro-supercapacitor arrays with excellent energy and power densities, and adjustable voltage and current outputs through serial and parallel connections of different cells, showcasing stretchability and excellent cycling stability.

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Portable Electrochemiluminescence Platform With Laser-Induced Graphene-Based U-Shaped Bipolar Electrode for Selective Sensing of Various Analytes

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Summary: In this study, a laser-induced graphene-based electrochemiluminescence system loaded with U-shaped bipolar electrode was successfully developed for enzymeless sensing of various biomarkers. The system is characterized by its low cost, easy fabrication, and portability.

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Electrochemiluminescence sensing of vitamin B12 using laser-induced graphene based bipolar and single electrodes in a 3D-printed portable system

Manish Bhaiyya et al.

Summary: Vitamin B-12 plays a crucial role in human health, and its deficiency can lead to various health issues. The study successfully utilized ECL platforms for rapid and accurate detection of vitamin B-12 levels, ensuring the well-being of individuals.

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Novel multi-walled carbon nanotubes-embedded laser-induced graphene in crosslinked architecture for highly responsive asymmetric pressure sensor

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Accurate Flexible Temperature Sensor Based on Laser-Induced Graphene Material

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Laser induced graphene electrodes enhanced with carbon nanotubes for membraneless microfluidic fuel cell

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Simple Scalable Fabrication of Laser-Induced Graphene Composite Membranes for Water Treatment

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Substrate-Independent Laser-Induced Graphene Electrodes for Microfluidic Electroanalytical Systems

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