Demonstration of an Enhanced “Interconnect Topology”-Based Superhydrophobic Surface on 2024 Aluminum Alloy by Femtosecond Laser Ablation and Temperature-Controlled Aging Treatment

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Last updated 20 setembro 2024
Demonstration of an Enhanced “Interconnect Topology”-Based Superhydrophobic  Surface on 2024 Aluminum Alloy by Femtosecond Laser Ablation and  Temperature-Controlled Aging Treatment
Demonstration of an Enhanced “Interconnect Topology”-Based Superhydrophobic  Surface on 2024 Aluminum Alloy by Femtosecond Laser Ablation and  Temperature-Controlled Aging Treatment
Demonstration of an Enhanced “Interconnect Topology”-Based
Demonstration of an Enhanced “Interconnect Topology”-Based Superhydrophobic  Surface on 2024 Aluminum Alloy by Femtosecond Laser Ablation and  Temperature-Controlled Aging Treatment
Short and long term surface chemistry and wetting behaviour of
Demonstration of an Enhanced “Interconnect Topology”-Based Superhydrophobic  Surface on 2024 Aluminum Alloy by Femtosecond Laser Ablation and  Temperature-Controlled Aging Treatment
Wettability and Stability of Wetting States for the Surfaces with
Demonstration of an Enhanced “Interconnect Topology”-Based Superhydrophobic  Surface on 2024 Aluminum Alloy by Femtosecond Laser Ablation and  Temperature-Controlled Aging Treatment
Wrinkled, Dual-Scale Structures of Diamond-Like Carbon (DLC) for
Demonstration of an Enhanced “Interconnect Topology”-Based Superhydrophobic  Surface on 2024 Aluminum Alloy by Femtosecond Laser Ablation and  Temperature-Controlled Aging Treatment
Multifunctional Ultrathin Aluminum Foil: Oil/Water Separation and
Demonstration of an Enhanced “Interconnect Topology”-Based Superhydrophobic  Surface on 2024 Aluminum Alloy by Femtosecond Laser Ablation and  Temperature-Controlled Aging Treatment
Bionic eco-friendly synergic anti-scaling Cu-Zn-CeO2 coating on
Demonstration of an Enhanced “Interconnect Topology”-Based Superhydrophobic  Surface on 2024 Aluminum Alloy by Femtosecond Laser Ablation and  Temperature-Controlled Aging Treatment
Tong CHEN, Doctor of Engineering
Demonstration of an Enhanced “Interconnect Topology”-Based Superhydrophobic  Surface on 2024 Aluminum Alloy by Femtosecond Laser Ablation and  Temperature-Controlled Aging Treatment
Effect of side length on wettability and stability of the wetting
Demonstration of an Enhanced “Interconnect Topology”-Based Superhydrophobic  Surface on 2024 Aluminum Alloy by Femtosecond Laser Ablation and  Temperature-Controlled Aging Treatment
Wettability and Stability of Wetting States for the Surfaces with
Demonstration of an Enhanced “Interconnect Topology”-Based Superhydrophobic  Surface on 2024 Aluminum Alloy by Femtosecond Laser Ablation and  Temperature-Controlled Aging Treatment
Wettability and Stability of Wetting States for the Surfaces with
Demonstration of an Enhanced “Interconnect Topology”-Based Superhydrophobic  Surface on 2024 Aluminum Alloy by Femtosecond Laser Ablation and  Temperature-Controlled Aging Treatment
Wrinkled, Dual-Scale Structures of Diamond-Like Carbon (DLC) for
Demonstration of an Enhanced “Interconnect Topology”-Based Superhydrophobic  Surface on 2024 Aluminum Alloy by Femtosecond Laser Ablation and  Temperature-Controlled Aging Treatment
Recurrent Filmwise and Dropwise Condensation on a Beetle Mimetic
Demonstration of an Enhanced “Interconnect Topology”-Based Superhydrophobic  Surface on 2024 Aluminum Alloy by Femtosecond Laser Ablation and  Temperature-Controlled Aging Treatment
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Demonstration of an Enhanced “Interconnect Topology”-Based Superhydrophobic  Surface on 2024 Aluminum Alloy by Femtosecond Laser Ablation and  Temperature-Controlled Aging Treatment
Tong CHEN, Doctor of Engineering

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