Skip Nav Destination
Close Modal
Update search
Filter
- Title
- Author
- Author Affiliations
- Full Text
- Abstract
- Keyword
- DOI
- ISBN
- ISBN-10
- ISSN
- EISSN
- Issue
- Journal Volume Number
- References
- Conference Volume Title
- Paper No
Filter
- Title
- Author
- Author Affiliations
- Full Text
- Abstract
- Keyword
- DOI
- ISBN
- ISBN-10
- ISSN
- EISSN
- Issue
- Journal Volume Number
- References
- Conference Volume Title
- Paper No
Filter
- Title
- Author
- Author Affiliations
- Full Text
- Abstract
- Keyword
- DOI
- ISBN
- ISBN-10
- ISSN
- EISSN
- Issue
- Journal Volume Number
- References
- Conference Volume Title
- Paper No
Filter
- Title
- Author
- Author Affiliations
- Full Text
- Abstract
- Keyword
- DOI
- ISBN
- ISBN-10
- ISSN
- EISSN
- Issue
- Journal Volume Number
- References
- Conference Volume Title
- Paper No
Filter
- Title
- Author
- Author Affiliations
- Full Text
- Abstract
- Keyword
- DOI
- ISBN
- ISBN-10
- ISSN
- EISSN
- Issue
- Journal Volume Number
- References
- Conference Volume Title
- Paper No
Filter
- Title
- Author
- Author Affiliations
- Full Text
- Abstract
- Keyword
- DOI
- ISBN
- ISBN-10
- ISSN
- EISSN
- Issue
- Journal Volume Number
- References
- Conference Volume Title
- Paper No
NARROW
Date
Availability
1-20 of 4332
Follow your search
Access your saved searches in your account
Would you like to receive an alert when new items match your search?
Sort by
Journal Articles
Accepted Manuscript
Article Type: Research-Article
J. Micro Nano-Manuf.
Paper No: JMNM-22-1030
Published Online: March 21, 2023
Journal Articles
Accepted Manuscript
Article Type: Research-Article
J. Micro Nano-Manuf.
Paper No: JMNM-22-1035
Published Online: March 21, 2023
Journal Articles
Benjamin Black, Sekkappan Chockalingam, Md Didarul Islam, Sipan Liu, Himendra Perera, Saad Khan, Jong Eun Ryu
Article Type: Research-Article
J. Micro Nano-Manuf. June 2022, 10(2): 021006.
Paper No: JMNM-22-1032
Published Online: February 8, 2023
Image
in Fabrication of Bioinspired Micro/Nano-Textured Surfaces Through Scalable Roll Coating Manufacturing
> Journal of Micro and Nano-Manufacturing
Published Online: February 8, 2023
Fig. 1 Schematic of two-roll coating machine with capillary bridging effect More
Image
in Fabrication of Bioinspired Micro/Nano-Textured Surfaces Through Scalable Roll Coating Manufacturing
> Journal of Micro and Nano-Manufacturing
Published Online: February 8, 2023
Fig. 2 Rheology property of the 10% CNT—PDMS paste More
Image
in Fabrication of Bioinspired Micro/Nano-Textured Surfaces Through Scalable Roll Coating Manufacturing
> Journal of Micro and Nano-Manufacturing
Published Online: February 8, 2023
Fig. 3 Parameter plot to finalize process window More
Image
in Fabrication of Bioinspired Micro/Nano-Textured Surfaces Through Scalable Roll Coating Manufacturing
> Journal of Micro and Nano-Manufacturing
Published Online: February 8, 2023
Fig. 4 Surface morphology of the 12 sample More
Image
in Fabrication of Bioinspired Micro/Nano-Textured Surfaces Through Scalable Roll Coating Manufacturing
> Journal of Micro and Nano-Manufacturing
Published Online: February 8, 2023
Fig. 5 Variation of surface descriptors versus capillary number More
Image
in Fabrication of Bioinspired Micro/Nano-Textured Surfaces Through Scalable Roll Coating Manufacturing
> Journal of Micro and Nano-Manufacturing
Published Online: February 8, 2023
Fig. 6 Variation of surface descriptors versus shear rate More
Image
in Fabrication of Bioinspired Micro/Nano-Textured Surfaces Through Scalable Roll Coating Manufacturing
> Journal of Micro and Nano-Manufacturing
Published Online: February 8, 2023
Fig. 7 Peak density coefficient with respect to peak density More
Image
in Fabrication of Bioinspired Micro/Nano-Textured Surfaces Through Scalable Roll Coating Manufacturing
> Journal of Micro and Nano-Manufacturing
Published Online: February 8, 2023
Fig. 8 Water contact angle results More
Image
in Fabrication of Bioinspired Micro/Nano-Textured Surfaces Through Scalable Roll Coating Manufacturing
> Journal of Micro and Nano-Manufacturing
Published Online: February 8, 2023
Fig. 9 Variation of water contact angle versus capillary number and shear rate More
Journal Articles
Article Type: Research-Article
J. Micro Nano-Manuf. June 2022, 10(2): 021005.
Paper No: JMNM-22-1031
Published Online: February 1, 2023
Image
in Electric-Field and Mechanical Vibration-Assisted Atomic Force Microscope-Based Nanopatterning
> Journal of Micro and Nano-Manufacturing
Published Online: February 1, 2023
Fig. 1 A Schematic illustration of the experimental setup and the mechanism of the E-V AFM nanolithography. ( a ) A schematic view of the E-V AFM setup. ( b ) E-field strength distribution in the polymer layer underneath the AFM tip. ( c ) Height profile of the fabricated nanofeatures correspondin... More
Image
in Electric-Field and Mechanical Vibration-Assisted Atomic Force Microscope-Based Nanopatterning
> Journal of Micro and Nano-Manufacturing
Published Online: February 1, 2023
Fig. 2 E-V AFM lithography results with no-vibration (upper three lines) and xy -vibration (lower three lines, vibration amplitude = 0.6 VPP) under different tip biases (0.5, 1.2, 2 V from left to right, respectively). ( a )Topography image of the nanopatterns. ( b ) and ( c ) Height profiles of ... More
Image
in Electric-Field and Mechanical Vibration-Assisted Atomic Force Microscope-Based Nanopatterning
> Journal of Micro and Nano-Manufacturing
Published Online: February 1, 2023
Fig. 3 E-V AFM lithography results with different xy -vibration amplitudes (vibration amplitude = 0, 0.6, and 1.2 VPP) comparison, with the same speed (0.5 μ m/s) and tip bias (2.9 V) applied. ( a )–( c ) Topography images. ( d ) Height profiles of topography images. ( e )Width and depth compari... More
Image
in Electric-Field and Mechanical Vibration-Assisted Atomic Force Microscope-Based Nanopatterning
> Journal of Micro and Nano-Manufacturing
Published Online: February 1, 2023
Fig. 4 E-V AFM lithography results with no-vibration and x -vibration (vibration amplitude = 0.6 VPP) comparison, with the same tip bias (2.1 V) applied. ( a ) Topography image of the nanopatterns. ( b ) Widths and depths of trenches fabricated with and without x -vibration. ( c ) and ( d ) Heig... More
Image
in Electric-Field and Mechanical Vibration-Assisted Atomic Force Microscope-Based Nanopatterning
> Journal of Micro and Nano-Manufacturing
Published Online: February 1, 2023
Fig. 5 E-V AFM lithography results with no-vibration and y -vibration (vibration amplitude = 0.6 VPP) comparison, with the same tip bias (2.1 V) applied. ( a ) Topography image of the nanopatterns. ( b ) Widths and depths of trenches fabricated with and without y -vibration. ( c ) and ( d ) Heig... More
Image
in Electric-Field and Mechanical Vibration-Assisted Atomic Force Microscope-Based Nanopatterning
> Journal of Micro and Nano-Manufacturing
Published Online: February 1, 2023
Fig. 6 E-V AFM lithography results with no-vibration and x -vibration (vibration amplitude = 0.8 VPP) comparison, with different speeds (50, 10, 0.5 μ m/s) and tip biases (0.5, 1.3, 2.1 V). ( a ) Topography image of nanopatterns. ( b ) and ( c ) Height profiles of nanotrenches. ( d ) Widths and ... More
Image
in Electric-Field and Mechanical Vibration-Assisted Atomic Force Microscope-Based Nanopatterning
> Journal of Micro and Nano-Manufacturing
Published Online: February 1, 2023
Fig. 7 E-V AFM lithography results with no-vibration and y -vibration (vibration amplitude = 0.8 VPP), with different speeds (50, 10, 0.5 μ m/s) and tip biases (0.5, 1.3, 2.1 V). The dotted rectangles show feature with sub-10 nm size (close to 5 nm) under 50 μ m/s patterning speed and 2.1 V tip... More