Effect of Graphene Oxide on Physical and Mechanical Properties of 3D Printed Concrete (2025-09)¶
, Wen Jun, Gao Pengxiang, Liu Yan, Zhang Zupan
Journal Article - Advances in Structural Engineering
Abstract
Graphene oxide (GO), as a novel nanomaterial, can effectively improve the properties of 3D printed concrete. However, the optimization mechanism of the dosage control on the physical and mechanical properties of the material still requires systematic research. In this study, through fluidity tests, axial compression tests, porosity tests, and scanning electron microscopy (SEM), the effects of a gradient GO dosage on the fluidity, compressive strength, and microstructure of 3D printed concrete were evaluated. The findings indicate that: (1) The fluidity of the 3D printed concrete increases with increasing GO content. Notably, the concrete with more than 0.4 weight percent (wt.%) GO falls below the process standard for 3D printed technology. (2) For the cast-in-place group, when the GO content is 0.1, 0.2, and 0.3 wt.%, the compressive strength increases by approximately 4%, 7.3%, and 16.8%, respectively, compared to concrete without GO, reaching values of 42.8, 44, and 47.9 MPa. The compressive strength of the 3D printed group also shows an increase of 0.2%, 4.9%, and 9.9%, resulting in values of 48.5, 48.6, 50.9, and 53.3 MPa, respectively. (3) The incorporation of GO into concrete causes a porosity reduction of 2.22% to 4.03%, respectively, accompanied by a decrease of approximately 7000 gel pores and a reduction in the maximum pore size by nearly 6.7 times. (4) The microstructural diagram reveals that in the absence of GO, various pores, micro-cracks, spherical voids, and loose cementitious materials appear on the concrete microsurface. However, with the addition of 0.3 wt.% GO, only a limited number of pores and voids are observed. This study establishes a novel dosage-microstructure-property paradigm where 0.3 wt.% GO optimally balances processability (ensured by rheology) with performance (driven by pore homogenization and accelerated hydration). These results inform the optimization of mix designs for additive manufacturing of cementitious composites.
¶
22 References
- An Ning, Wang Huai, Le Liu, Li Shuo et al. (2024-10)
Real-Time Monitoring of Extrudability and Buildability in 3D Concrete Printing Based on Target Detection Method - Basha Shaik, Rehman Atta, Aziz Md, Kim Jung-Hoon (2023-02)
Cement Composites with Carbon-Based Nanomaterials for 3D Concrete Printing Applications:
A Review - Jiang Youbau, Gao Pengxiang, Adhikari Sondipon, Yao Xiaofei et al. (2024-12)
Studies on the Mechanical Properties of Inter-Layer Interlocking 3D Printed Concrete Based on a Novel Nozzle - Jiang Youbau, Liu Yan, Zhang Zupan, Gao Pengxiang et al. (2025-03)
Tensile Performance of Interlayer Interface of Interlocking 3D Printed Concrete with Single Toothlike Nozzle - Le Thanh, Austin Simon, Lim Sungwoo, Buswell Richard et al. (2012-01)
Mix-Design and Fresh Properties for High-Performance Printing Concrete - Li Zihan, Liu Huanbao, Nie Ping, Cheng Xiang et al. (2023-12)
Mechanical Properties of Concrete Reinforced with High-Performance Micro-Particles for 3D Concrete Printing - Liu Junli, Tran Jonathan, Ginigaddara Thusitha, Mendis Priyan (2023-06)
Exploration of Using Graphene Oxide for Strength Enhancement of 3D Printed Cementitious Mortar - Luo Qiling, Yu Ke-Ke, Long Wujian, Zheng Shuyi et al. (2024-07)
Influence of Different Types of Superabsorbent Polymers on Fresh Mechanical Properties and Inter-Layer Adhesion of 3D Printed Concrete - Marchment Taylor, Sanjayan Jay, Nematollahi Behzad, Xia Ming (2019-02)
Inter-Layer Strength of 3D Printed Concrete - Maurya Shubham, Dey Dhrutiman, Panda Biranchi, Dixit Uday (2023-04)
In-Line Reinforcement of Steel-Cable in 3D Concrete Printing - Seo Eun-A, Kim Won-Woo, Kim Sung-Wook, Kwon Hongkyu et al. (2023-03)
Mechanical Properties of 3D Printed Concrete with Coarse Aggregates and Polypropylene-Fiber in the Air and Underwater Environment - Shahmirzadi Mohsen, Gholampour Aliakbar, Kashani Alireza, Ngo Tuan (2023-10)
Geopolymer Mortars for Use in Construction 3D Printing:
Effect of LSS, Graphene-Oxide and Nano-Clay at Different Environmental Conditions - Shoaei Parham, Kjøniksen Anna-Lena, Pamies Ramón, Pilehvar Shima (2024-05)
Characterization of 3D Printable Geopolymer Mortars:
Effect of Binder Composition and Basalt-Fiber-Reinforcement - Sukontasukkul Piti, Panklum Kasidet, Maho Buchit, Banthia Nemkumar et al. (2021-12)
Effect of Synthetic Micro-Fiber and Viscosity-Modifying-Agent on Layer Deformation, Viscosity, and Open-Time of Cement Mortar for 3D Printing Application - Tittelboom Kim, Mohan Dhanesh, Šavija Branko, Keita Emmanuel et al. (2024-08)
On the Micro-and Meso-Structure and Durability of 3D Printed Concrete Elements - Wang Li, Wang Fucheng, Li Rong, Wang Qiao (2023-12)
Interfacial Constitutive Model of 3D Printed Fiber-Reinforced Concrete Composites and Its Experimental Validation - Warsi Syed, Panda Biranchi, Biswas Pankaj (2023-12)
Exploring Fiber Addition Methods and Mechanical Properties of Fiber-Reinforced 3D Printed Concrete:
A Review - Yang Yan, Wu Hangzi, Han Lifang, Huang Qingling et al. (2023-12)
Investigation on Geometric and Surface Finish Quality of 3D Concrete Printed Walls with Hollow Section - Yin Yunchao, Huang Jian, Wang Tiezhu, Yang Rong et al. (2023-09)
Effect of Hydroxypropyl-Methylcellulose on Rheology and Printability of the First Printed Layer of Cement Activated Slag-Based 3D Printing Concrete - Yu Shiwei, Sanjayan Jay, Du Hongjian (2022-07)
Effects of Cement Mortar Characteristics on Aggregate-Bed 3D Concrete Printing - Zhang Yu, Zhang Yunsheng, Qian Rusheng, Liu Guojian et al. (2022-09)
Influence of Steel-Fiber on the Water-Absorption of 3D Printed Concrete - Zhang Yu, Zhang Yunsheng, She Wei, Yang Lin et al. (2019-01)
Rheological and Hardened Properties of the High-Thixotropy 3D Printing Concrete
0 Citations
BibTeX
@article{jian_wen_gao_liu.2025.EoGOoPaMPo3PC,
author = "Youbau Jiang and Jun Wen and Pengxiang Gao and Yan Liu and Zupan Zhang",
title = "Effect of Graphene Oxide on Physical and Mechanical Properties of 3D Printed Concrete",
doi = "10.1177/13694332251377539",
year = "2025",
journal = "Advances in Structural Engineering",
}
Formatted Citation
Y. Jiang, J. Wen, P. Gao, Y. Liu and Z. Zhang, “Effect of Graphene Oxide on Physical and Mechanical Properties of 3D Printed Concrete”, Advances in Structural Engineering, 2025, doi: 10.1177/13694332251377539.
Jiang, Youbau, Jun Wen, Pengxiang Gao, Yan Liu, and Zupan Zhang. “Effect of Graphene Oxide on Physical and Mechanical Properties of 3D Printed Concrete”. Advances in Structural Engineering, 2025. https://doi.org/10.1177/13694332251377539.