IP Library › Granted Patent US 12,440,896
Granted Patent B2
US 12,440,896 · App. 18/140,271 · Granted Oct 14, 2025

3-D printed hydrophobic metallic nanocomposites

Inventors: Troy Youngmin Ansell (Marina, CA); Andy Nieto (Morgan Hill, CA); Justin Budan (Dubuwque, IA)
Assignee: The Government of the Unites States of America, as represented by the Secretary of the Navy
B22F10/28B22F9/04B22F10/43B23K15/0086B23K15/0093B23K15/06B23K26/0006B23K26/144B23K26/147B23K26/342B32B5/16B32B15/01B32B15/011B32B15/04B32B15/043B32B15/18B33Y10/00B33Y40/10B33Y70/00B33Y70/10B33Y80/00C22C1/05C22C1/10C22C1/1005C22C1/1084C22C26/00C22C47/00C22C47/14C22C49/02C22C49/08C22C49/14B22F2009/043B22F10/25B22F2301/35B22F2302/403B23K2103/05B23K2103/52C22C2026/002Y10T428/12576Y10T428/12979Y10T428/12993
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 12,440,896
App. No.
18/140,271
Granted
Oct 14, 2025
Kind
B2
Abstract

This disclosure, and the exemplary embodiments provided herein, disclose carbon nanotubes (CNT) integrated into 316L stainless steel (SS) powder feedstocks and 3D-printed using selective laser melting (SLM). Ball milling is used to disperse CNT clusters homogeneously onto the surface of 316L SS powders with minimal damage to the CNTs. Hardness increased by 35% and wear was reduced by 70% with the addition of 2 vol % CNT, relative to SLM 316L SS. The addition of CNTs increased the water contact angle and retained the desirable corrosion resistance of SLM 316L SS, demonstrating the potential of 3D-printed SS-CNT composites for use in structural marine applications.

Claims (20)

1. A 3D printed hydrophobic metallic component comprising:

multiple metallic layers deposited successively, wherein each metallic layer comprises a metallic surface and multiple asperities;

the multiple asperities comprising arrays of micropillars configured to create an air barrier between the metallic surface and a water droplet, wherein the air barrier induces a Cassie-Baxter state and hydrophobic effect;

the multiple asperities formed by a method comprising,

providing a composite powder, the composite powder generated by mixing a metal powder with a nanotube material in a high energy ball mill, and

melting, by selective laser melting, the composite powder to form a melt pool, wherein the melt pool disseminates the nanotube material, wherein the dispersed nanotube materials form arrays of micropillars;

purging, by an argon gas, the environment around the melt pool; and

cooling, by the argon gas, the melt pool.

2. The component of claim 1 , wherein the nanotube material is carbon nanotubes (CNTs).

3. The component of claim 2 , wherein the composite powder is 1% or 2% CNT by volume.

4. The component of claim 2 , wherein the selective laser melting machine is configured to have a target energy density that is low enough to ensure particulates of the CNT do not dissolve.

5. The component of claim 2 , wherein the CNT is approximately 0.1% to 3% by volume of the composite powder.

6. The component of claim 1 , wherein the metallic powder is 316L stainless steel powder.

7. The component of claim 1 , wherein the composite powder comprises metal powder and boron nitride.

8. The component of claim 1 , wherein the composite powder comprises carbon nanotubes (CNTs) and stainless steel powder.

9. The component of claim 8 , wherein the carbon nanotube is a multiwall CNT having lengths in the range of 10-30 μms and diameters in the range of 10-20 nm.

10. The component of claim 1 , wherein the composite powder is 3D printed directly on a surface of another body.

11. A 3D-printed stainless steel composite structure comprising:

multiple metallic layers deposited successively, wherein each metallic layer comprises a stainless steel surface and multiple asperities;

the multiple asperities comprising arrays of carbon nanotube (CNT) micropillars configured to create an air barrier between the stainless steel surface and a water droplet, wherein the air barrier induces a Cassie-Baxter state and hydrophobic effect.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 7, 2025
From: ANSELL, TROY YOUNGMIN; NIETO, ANDY; BUDAN, JUSTIN
To: THE GOVERNMENT OF THE UNITED STATES OF AMERICA, AS REPRESENTED BY THE SECRETARY OF THE NAVY
Reel/Frame 071048/0077 →
Continuity (2)
Provisional Application 63335545 · Apr 27, 2022
Related Publication 20230347413A1 · Nov 2, 2023
References Cited (3)
US 20160208367A1 · Miller · 2016 [cited by examiner]
Bakshi, et al., “Carbon nanotube reinforced metal matrix composites—a review” in International Materials Rev., 2010 (no month), vol. 55, No. 1, pp. 41-64. (Year: 2010). [cited by examiner]
Chang et al., “Direct metal laser sintering synthesis of carbon nanotube reinforced Ti matrix composites . . . ” in J. Mater. Res., vol. 31, No. 2, Jan. 28, 2016, pp. 281-291. (Year: 2016). [cited by examiner]