Zurück zu den Ergebnissen
Bibliografischer Datensatz · Ansicht und Zugriff
Artículo

Enhancing Properties of Metakaolin-Based Geopolymers: The Effect of Zirconia and Silica Nanosphere Additions

Mevy Firdaus et al · Vasyl Stefanyk Carpathian National University · 2026

Open-Access-Volltext
Schnellübersicht. Prüfen Sie die grundlegenden Angaben und öffnen Sie den Inhalt über die Hauptschaltfläche. Die Seite zeigt nur die Informationen, die zum Identifizieren, Zitieren und Öffnen des Werks nötig sind.

Zugriff auf die Ressource

Öffnen Sie den Inhalt über die Hauptoption oder wählen Sie eine andere verfügbare Quelle.

DOAJ DOAJ Articles
Entrar por DOAJ
Hauptzugriff

Open-Access-Volltext

Texto completo identificado como acceso abierto.
Text öffnen

Übersicht

Descripción general del contenido del recurso.

Geopolymers are known for its high compressive but low tensile strength due to its brittle nature, which restricts the use of geopolymers as structural material. It is important to enhance their mechanical performance by incorporating reinforcing materials. This research examines the contribution of silica nanospheres and zirconia to enhance the tensile strength of geopolymer composites utilizing metakaolin. Geopolymers were prepared from an 8M NaOH and sodium silicate activator, which was prepared for 24 hours prior to mixing in a ratio of 2:1. Confirmation of the amorphous silica presence, monoclinic and tetragonal zirconia, and crystalline phases in metakaolin including quartz, mullite, and hematite was verified using X-ray diffraction (XRD) analysis. The scanning electron microscope (SEM) showed that both silica nanospheres and zirconia resulted in a more densely packed microcomposite material with less porosity. Diametral tensile strength (DTS) at 28 days was seen to improve from 2.24 MPa (control) to 2.58 MPa with 80% silica and 3.61 MPa with 60% zirconia and 20% silica nanospheres. These improvements showed that nanomaterials such as silica can enhance the densification of the matrix while zirconia contributes structural reinforcement for improved mechanical properties. The findings here are consistent with earlier work that demonstrated the synergistic effects of silica nanospheres and zirconia to improve geopolymers performance. Findings from this study further demonstrates modified geopolymers can be used in applications requiring high mechanical strength but would require additional investigation to determine its durability and thermal properties to use them in structural and functional applications.

Zitieren

Elegí el formato que necesitás y copiá la referencia al portapapeles.

APA 7

al, M. F. E. (2026). Enhancing Properties of Metakaolin-Based Geopolymers: The Effect of Zirconia and Silica Nanosphere Additions. https://doi.org/10.15330/pcss.27.1.35-43

MLA

al, Mevy Firdaus et. "Enhancing Properties of Metakaolin-Based Geopolymers: The Effect of Zirconia and Silica Nanosphere Additions." 2026. https://doi.org/10.15330/pcss.27.1.35-43.

Chicago

al, Mevy Firdaus et. 2026. "Enhancing Properties of Metakaolin-Based Geopolymers: The Effect of Zirconia and Silica Nanosphere Additions.". https://doi.org/10.15330/pcss.27.1.35-43.

Harvard

al, M. F. E. 2026, Enhancing Properties of Metakaolin-Based Geopolymers: The Effect of Zirconia and Silica Nanosphere Additions, Vasyl Stefanyk Carpathian National University, available at: https://doi.org/10.15330/pcss.27.1.35-43 [Accessed 5 Aug. 2026].

Teilen und drucken

Speichern Sie den Datensatz, kopieren Sie den Permalink oder drucken Sie ihn als PDF.

Referenz exportieren

Exportieren Sie den Datensatz in gängigen Formaten für Literaturverwaltungsprogramme.

Ressourcendetails

Bibliografische Angaben zur Prüfung, ob es sich um das richtige Material handelt.

Titel
Enhancing Properties of Metakaolin-Based Geopolymers: The Effect of Zirconia and Silica Nanosphere Additions
Autor / Mitwirkende
Mevy Firdaus et al
Verlag
Vasyl Stefanyk Carpathian National University
Erscheinungsjahr
2026
ISSN
1729-4428
ISSN
1729-4428
Sprache
Inglés

Schlagwörter

Entdecken Sie über diese Schlagwörter weitere verwandte Ressourcen.

Kopiert