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How generative AI affordance drives users’ continuous usage intention

The mediation role of self-expansion and self-extension

Datos Bibliográficos

ID21452575
AutoresYingying Du (0000-0002-2081-2757, Zhengzhou University), Yun Liu (0000-0001-7384-1351, China University of Petroleum, East China, autor de correspondencia)
Año2025
Páginas1-16
Fecha de publicación2025-12-11
Peer ReviewedSí
Open AccessNo
TipoARTICLE
RevistaBehaviour and Information Technology (JOURNAL)
Identificadores de la revistaISSN: 0144-929X • E-ISSN: 1362-3001
EditorialInforma UK Limited (PUBLISHER • GB)
DOI10.1080/0144929x.2025.2601075
OpenAlexW4417245542
IdiomaEN
Citas recibidas3
Referencias citadas63

The swift advancement of generative artificial intelligence (AI) is a key component of contemporary technological progress. Diverse generative AI tools are continually emerging and finding widespread application across numerous industries. Furthermore, individuals are increasingly exposed to and utilising these technologies. Nevertheless, the question of which technical attribute factors influence individuals’ intentions for continuous usage of generative AI remains unanswered in current research. Drawing from the affordance actualisation theory, this study focused on large language models (LLMs), a special type of generative AI tool, and formulated a theoretical framework delineating how affordances of generative AI impact users’ intentions for continuous usage, validated through the PLS-SEM method. The study reveals that the data capture, classification, delegation, and social affordances of generative AI have a positive impact on users’ self-expansion and self-extension. Self-expansion and self-extension in turn positively influenced users’ continuous usage intentions. Furthermore, data capture, classification, delegation, and social affordances exhibit significant indirect effects on users’ continuous usage intentions, mediated by two parallel factors: self-expansion and self-extension. This discovery contributes to ongoing research in the realm of emerging information technology, offering novel perspectives on how information technology affordances influence user responses

Action (physics) · Affordance · Generative grammar · Mechanism (biology) · Mediation · AI in Service Interactions · Embodied and Extended Cognition · Human-Automation Interaction and Safety

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Obras citantes distintas3
Citas por año3
Intervalo de citas2025 - 2026 (2)
Velocidad de citacióncurrent
Altamente citadoNo
Tipos de citaNeutras: 3
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