IP Library › Granted Patent US 12,172,103
Granted Patent B2
US 12,172,103 · App. 18/544,281 · Granted Dec 24, 2024

Anti-biofouling magnetic silk fibroin (SF)-based composite aerogel, and preparation method and use thereof

Inventors: Yang Lu (Hefei, CN); Hanye Xing (Hefei, CN); Jingzhe Xue (Hefei, CN); Yonghong Song (Hefei, CN); Hao Xu (Hefei, CN); Sheng Chen (Hefei, CN); Kangkang Li (Hefei, CN); Liang Dong (Hefei, CN); Wei Zhang (Hefei, CN); Zongshun Peng (Hefei, CN); Lijing Wang (Hefei, CN)
Assignee: Hefei University of Technology
B01D1/30B01D1/0035C02F1/14C07K14/43586C02F2101/308C02F2103/08C02F2201/002C02F2303/20
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Quick Facts
Patent No.
US 12,172,103
App. No.
18/544,281
Granted
Dec 24, 2024
Kind
B2
Abstract

A magnetic material used in the magnetic SF-based composite aerogel is a ferroferric oxide nanocubic particle, which is a magnetic nanomaterial with both excellent magnetocaloric performance and excellent photothermal performance. The magnetic SF-based composite aerogel prepared by the present disclosure exhibits excellent responsiveness to both alternating current (AC) magnetic fields and sunlight. Under an action of an AC magnetic field, the magnetic SF-based composite aerogel exhibits excellent temperature rise performance, which can inhibit the generation of biofouling in pores and channels inside a three-dimensional (3D) porous evaporation material. The magnetic SF-based composite aerogel exhibits excellent water evaporation performance under a sunlight irradiation, with a water evaporation rate of 2.03 kg m −2 ·h −1 .

Claims (11)

1. An anti-biofouling magnetic silk fibroin (SF)-based composite aerogel, consisting of an SF-aligned pore structure and magnetic nanoparticles (MNPs), wherein the MNPs are uniformly distributed in an inner pore of the SF-aligned pore structure;

wherein the MNPs are ferroferric oxide nanocubic particles;

a method for preparing the anti-biofouling magnetic SF-based composite aerogel comprises the following steps:

S1: preparing hydrophobic magnetic ferroferric oxide nanocubic particles by a high-temperature oil-phase method, and encapsulating the hydrophobic magnetic ferroferric oxide nanocubic particles with a polymer to obtain hydrophilic magnetic ferroferric oxide nanocubic particles;

S2: mixing the hydrophilic magnetic ferroferric oxide nanocubic particles obtained in the step S1 with an SF solution to obtain a mixed solution;

S3: pouring the mixed solution obtained in the step S2 into a mold, conducting orientation freezing for 25 min to 35 min, and conducting lyophilization to obtain a first magnetic SF-based composite aerogel;

S4: soaking the first magnetic SF-based composite aerogel obtained in the step S3 in a methanol solution to allow immobilization and washing to obtain a second magnetic SF-based composite aerogel; and

S5: freezing the second magnetic SF-based composite aerogel obtained in the step S4, and conducting lyophilization to obtain the anti-biofouling magnetic SF-based composite aerogel for water treatment;

the SF solution in the step S2 has a mass fraction of 6%;

wherein a concentration of the ferroferric oxide nanocubic particles is 1.0 mg/mL, and a temperature rise of the anti-biofouling magnetic SF-based composite aerogel in a wet state under a magnetic field intensity of 20 kA/m is smaller than or equal to 81° C.

2. The anti-biofouling magnetic SF-based composite aerogel according to claim 1 , wherein the anti-biofouling magnetic SF-based composite aerogel has a water evaporation rate of 2.03 kg·m −2 ·h −1 under a light intensity of 1 kW/m 2 .

Priority Claims (1)
CN 202211648303.5 · Dec 21, 2022 · national
Continuity (1)
Related Publication 20240207756A1 · Jun 27, 2024