NIR light‐propelled bullet‐shaped carbon hollow nanomotors with controllable shell thickness for the enhanced dye removal

Abstract Materials with asymmetric nanostructures have attracted tremendous research attention due to their unique structural characteristics, excellent physicochemical properties, and promising prospects. However, it is still difficult to design and fabricate bullet‐shaped nanostructure due to its...

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Main Authors: Jinyang Lv, Yi Xing, Xiaoyu Li, Xin Du
Format: Article
Language:English
Published: Wiley 2022-12-01
Series:Exploration
Subjects:
Online Access:https://doi.org/10.1002/EXP.20210162
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author Jinyang Lv
Yi Xing
Xiaoyu Li
Xin Du
author_facet Jinyang Lv
Yi Xing
Xiaoyu Li
Xin Du
author_sort Jinyang Lv
collection DOAJ
description Abstract Materials with asymmetric nanostructures have attracted tremendous research attention due to their unique structural characteristics, excellent physicochemical properties, and promising prospects. However, it is still difficult to design and fabricate bullet‐shaped nanostructure due to its structural complexity. Herein, for the first time, we successfully constructed NIR light‐propelled bullet‐shaped hollow carbon nanomotors (BHCNs) with an open mouth on the bottom of nano‐bullet for the enhanced dye removal, by employing bullet‐shaped silica nanoparticles (B‐SiO2 NPs) as a hard template. BHCNs were formed by the growth of polydopamine (PDA) layer on the heterogeneous surface of B‐SiO2 NPs, followed by the carbonization of PDA and subsequent selective etching of SiO2. The shell thickness of BHCNs was able to be facilely controlled from ≈ 14 to 30 nm by tuning the added amount of dopamine. The combination of streamlined bullet‐shaped nanostructure with good photothermal conversion efficiency of carbon materials facilitated the generation of asymmetric thermal gradient field around itself, thus driving the motion of BHCNs by self‐thermophoresis. Noteworthily, the diffusion coefficient (De) and velocity of BCHNs with shell thickness of 15 nm (BHCNs‐15) reached to 43.8 μm⋅cm−2 and 11.4 μm⋅s−1, respectively, under the illumination of 808 nm NIR laser with the power density of 1.5 W⋅cm−2. The NIR laser propulsion caused BCHNs‐15 to enhance the removal efficiency (53.4% vs. 25.4%) of methylene blue (MB) as a typical dye because the faster velocity could produce the higher micromixing role between carbon adsorbent and MB. Such a smart design of the streamlined nanomotors may provide a promising potential in environmental treatment, biomedical and biosensing applications.
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spelling doaj.art-98b5fe5581c0466ab9173a41455f35182022-12-22T03:02:22ZengWileyExploration2766-85092766-20982022-12-0126n/an/a10.1002/EXP.20210162NIR light‐propelled bullet‐shaped carbon hollow nanomotors with controllable shell thickness for the enhanced dye removalJinyang Lv0Yi Xing1Xiaoyu Li2Xin Du3Beijing Key Laboratory for Bioengineering and Sensing Technology, School of Chemistry and Biological Engineering University of Science and Technology Beijing Beijing ChinaBeijing Key Laboratory for Bioengineering and Sensing Technology, School of Chemistry and Biological Engineering University of Science and Technology Beijing Beijing ChinaNational Engineering Laboratory for Hydrometallurgical Cleaner Production Technology Key Laboratory of Green Process and Engineering Institute of Process Engineering Chinese Academic of Sciences Beijing ChinaBeijing Key Laboratory for Bioengineering and Sensing Technology, School of Chemistry and Biological Engineering University of Science and Technology Beijing Beijing ChinaAbstract Materials with asymmetric nanostructures have attracted tremendous research attention due to their unique structural characteristics, excellent physicochemical properties, and promising prospects. However, it is still difficult to design and fabricate bullet‐shaped nanostructure due to its structural complexity. Herein, for the first time, we successfully constructed NIR light‐propelled bullet‐shaped hollow carbon nanomotors (BHCNs) with an open mouth on the bottom of nano‐bullet for the enhanced dye removal, by employing bullet‐shaped silica nanoparticles (B‐SiO2 NPs) as a hard template. BHCNs were formed by the growth of polydopamine (PDA) layer on the heterogeneous surface of B‐SiO2 NPs, followed by the carbonization of PDA and subsequent selective etching of SiO2. The shell thickness of BHCNs was able to be facilely controlled from ≈ 14 to 30 nm by tuning the added amount of dopamine. The combination of streamlined bullet‐shaped nanostructure with good photothermal conversion efficiency of carbon materials facilitated the generation of asymmetric thermal gradient field around itself, thus driving the motion of BHCNs by self‐thermophoresis. Noteworthily, the diffusion coefficient (De) and velocity of BCHNs with shell thickness of 15 nm (BHCNs‐15) reached to 43.8 μm⋅cm−2 and 11.4 μm⋅s−1, respectively, under the illumination of 808 nm NIR laser with the power density of 1.5 W⋅cm−2. The NIR laser propulsion caused BCHNs‐15 to enhance the removal efficiency (53.4% vs. 25.4%) of methylene blue (MB) as a typical dye because the faster velocity could produce the higher micromixing role between carbon adsorbent and MB. Such a smart design of the streamlined nanomotors may provide a promising potential in environmental treatment, biomedical and biosensing applications.https://doi.org/10.1002/EXP.20210162bullet‐shapecarbon hollow structuredye removalnanomotorsNIR‐laser propulsion
spellingShingle Jinyang Lv
Yi Xing
Xiaoyu Li
Xin Du
NIR light‐propelled bullet‐shaped carbon hollow nanomotors with controllable shell thickness for the enhanced dye removal
Exploration
bullet‐shape
carbon hollow structure
dye removal
nanomotors
NIR‐laser propulsion
title NIR light‐propelled bullet‐shaped carbon hollow nanomotors with controllable shell thickness for the enhanced dye removal
title_full NIR light‐propelled bullet‐shaped carbon hollow nanomotors with controllable shell thickness for the enhanced dye removal
title_fullStr NIR light‐propelled bullet‐shaped carbon hollow nanomotors with controllable shell thickness for the enhanced dye removal
title_full_unstemmed NIR light‐propelled bullet‐shaped carbon hollow nanomotors with controllable shell thickness for the enhanced dye removal
title_short NIR light‐propelled bullet‐shaped carbon hollow nanomotors with controllable shell thickness for the enhanced dye removal
title_sort nir light propelled bullet shaped carbon hollow nanomotors with controllable shell thickness for the enhanced dye removal
topic bullet‐shape
carbon hollow structure
dye removal
nanomotors
NIR‐laser propulsion
url https://doi.org/10.1002/EXP.20210162
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AT yixing nirlightpropelledbulletshapedcarbonhollownanomotorswithcontrollableshellthicknessfortheenhanceddyeremoval
AT xiaoyuli nirlightpropelledbulletshapedcarbonhollownanomotorswithcontrollableshellthicknessfortheenhanceddyeremoval
AT xindu nirlightpropelledbulletshapedcarbonhollownanomotorswithcontrollableshellthicknessfortheenhanceddyeremoval