Instytut Podstawowych Problemów Techniki
Polskiej Akademii Nauk

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Deepak Kumar


Ostatnie publikacje
1.  Lokhande P. E., Mohite D. D., Vedpathak A., Kumar D., Aepuru R., Rednam U., Al-Asbahi B. A., Microwave assisted Gd(OH)3–MXene nanocomposites for high power density solid state supercapacitor applications, Chemical communications, ISSN: 1359-7345, DOI: 10.1039/d6cc02461k, Vol.62, No.52, pp.13146-13149, 2026

Streszczenie:
A gadolinium hydroxide–MXene nanocomposite was synthesized through a microwave-assisted route as a supercapacitor electrode material. The prepared electrode material demonstrated a specific capacity of 128 mAh g−1, along with 98% capacitance retention after 5000 cycles. An solid-state hybrid supercapacitor (Gd–MX//AC) delivered an energy density of 25.8 Wh kg−1 and a high power density of 3000 W kg−1, while maintaining outstanding capacitance retention over repeated cycles.

Afiliacje autorów:
Lokhande P. E. - IPPT PAN
Mohite D. D. - inna afiliacja
Vedpathak A. - inna afiliacja
Kumar D. - inna afiliacja
Aepuru R. - inna afiliacja
Rednam U. - inna afiliacja
Al-Asbahi B. A. - inna afiliacja
200p.
2.  Islam R., Ballal R. S., Lokhande P. E., Khatavkar S., Lokhande D., Mudila H., Khasim S., Almasoudi A., Kumar D., Vedpathak A., Aepuru R., Rednam U., Kumar A., Strategic WS2 loading in conductive polypyrrole matrices for next-generation supercapacitors, MATERIALS CHEMISTRY AND PHYSICS, ISSN: 0254-0584, DOI: 10.1016/j.matchemphys.2026.132697, Vol.362, No.132697, pp.1-12, 2026

Streszczenie:
Conducting polymers are widely explored as supercapacitor electrodes due to their reversible redox activity, electrical conductivity, and mechanical flexibility; however, their long-term cycling stability is often limited by structural degradation caused by repeated ion doping and dedoping. In this study, PPy–WS2 nanocomposites with systematically varied WS2 loadings were synthesized through an in-situ oxidative polymerization approach to elucidate how WS2 content influences morphology, surface chemistry, charge-transfer behaviour, and overall electrochemical performance. Unlike conventional reports that primarily highlight performance metrics of PPy-based hybrids, this work establishes a clear composition–structure–performance relationship and identifies the optimal WS2 fraction required to balance pseudocapacitive activity with mechanical and structural stability. Physicochemical characterization confirmed the successful integration of WS2 within the PPy matrix, forming an interconnected architecture that enhances electroactive-site accessibility and facilitates efficient ion and electron transport. Among the prepared materials, the PPy–20W electrode delivered the highest specific capacitance of 911 F g−1 at 1 mV s−1, along with excellent cycling durability. The improved performance arises from synergistic PPy redox activity, WS2-mediated interfacial charge storage, and enhanced charge-transfer kinetics. An asymmetric supercapacitor assembled using the optimized composite achieved an energy density of 32.5 Wh kg−1 and a power density of 1400 W kg−1, demonstrating the effectiveness of controlled WS2 incorporation for advancing PPy-based supercapacitor electrodes.

Słowa kluczowe:
Polypyrrole, WS2, Dichalcogenide, Supercapacitor

Afiliacje autorów:
Islam R. - inna afiliacja
Ballal R. S. - inna afiliacja
Lokhande P. E. - IPPT PAN
Khatavkar S. - inna afiliacja
Lokhande D. - inna afiliacja
Mudila H. - inna afiliacja
Khasim S. - inna afiliacja
Almasoudi A. - inna afiliacja
Kumar D. - inna afiliacja
Vedpathak A. - inna afiliacja
Aepuru R. - inna afiliacja
Rednam U. - inna afiliacja
Kumar A. - inna afiliacja
70p.
3.  Soni R., Singh K., Lokhande P. E., Vo D.-V. N., Aepuru R., Mudila H., Kumar D., Enhanced visible-light-driven photodegradation of methyl orange dye using carbon assisted Bi2SrO4/g-C3N4 heterostructure, Surfaces and Interfaces, ISSN: 2468-0230, DOI: 10.1016/j.surfin.2026.110090, Vol.97, No.110090, pp.1-13, 2026

Streszczenie:
The accelerated growth of industries in modern society has triggered the release of toxic dyes into the environment, presenting a serious ecological risk and posing challenges for effective removal. The mixed-metal-based photodegradation of methyl orange dye (MOD) in aqueous medium is elucidated by degradation byproducts. This study reveals the synergistic effect of Bi2SrO4(BSO), g-C3N4 (g-CN) and graphene oxide (GO) in enhancing the photocatalytic performance of BSO photocatalyst. XRD analysis was performed to identify the crystalline phase of the nanocomposite, while the morphology of the BSO/g-CN/GO was examined by SEM analysis. UV analysis reveals the incorporation of the g-CN and GO in BSO, significantly enhancing the visible-light-absorption which is well-suited for efficient photodegradation. BSO/g-CN/GO displays markedly superior photocatalytic activity relative to BSO, g-CN and BSO/g-CN owing to its decreased band gap value. The photodegradation activity of the prepared composite is evaluated via degrading MOD under stimulated to visible light conditions. The nanocomposite BSO/g-CN/GO demonstrates the phenomenal performance (93.5%) in the degradation of the MOD compared to the pristine materials. This significant improvement in performance is due to the formation of the S-scheme heterojunction. In essence, this study delivers new insights into the photocatalytic performance of the BSO/g-CN/GO underscoring its potential as a proficient photocatalyst for resolving environmental concerns.

Słowa kluczowe:
Photocatalysis, Bi2SrO4, g-C3N4, Graphene Oxide, S-scheme, Methyl Orange

Afiliacje autorów:
Soni R. - inna afiliacja
Singh K. - inna afiliacja
Lokhande P. E. - IPPT PAN
Vo D.-V. N. - inna afiliacja
Aepuru R. - inna afiliacja
Mudila H. - inna afiliacja
Kumar D. - inna afiliacja
70p.
4.  Polu A. R., Kummitha O. R., Kumar D., Mishra K., Jain A., Design of hybrid nanocomposite solid polymer electrolytes using nano lithium salt for enhanced ionic transport in solid-state lithium batteries, Next Materials, ISSN: 2949-8228, DOI: 10.1016/j.nxmate.2026.102699, Vol.13, No.102699, pp.1-10, 2026

Streszczenie:
Solid polymer electrolytes with high ionic conductivity, dominant ion transport, and long-term electrochemical stability are essential for next-generation solid-state lithium batteries. In this study, a fully hybrid nanocomposite solid polymer electrolyte based on poly(ethylene oxide) (PEO), POSS-benzyl7(BF3Li)3 nano lithium salt, and POSSPEG13.3 nano plasticizer is developed using solution casting technique, in which both the salt and plasticizer possess organic–inorganic hybrid architectures. The optimized electrolyte containing 40 wt% POSSPEG13.3 exhibits a high room-temperature ionic conductivity of 8.64 × 10−4 S cm⁻¹ and follows Vogel–Tammann–Fulcher (VTF) behavior. Structural and thermal analyses reveal near-complete suppression of PEO crystallinity (∼1%) and good thermal stability up to ∼235 °C. The electrolyte shows excellent mechanical flexibility and a near-unity ion transference number (tion = 0.99). A wide electrochemical stability window of ∼4.7 V vs. Li/Li⁺ is obtained. Solid-state LiFePO4/Li cells deliver an initial discharge capacity of 169.3 mAh g⁻¹ at 0.1 C with 89.8% capacity retention after 100 cycles. These results demonstrate the effectiveness of the fully hybrid electrolyte design for solid-state lithium batteries.

Słowa kluczowe:
Solid polymer electrolyte, POSS lithium salt, Nano plasticizer, Ion transference number, Solid-state lithium batteries

Afiliacje autorów:
Polu A. R. - inna afiliacja
Kummitha O. R. - inna afiliacja
Kumar D. - inna afiliacja
Mishra K. - inna afiliacja
Jain A. - IPPT PAN

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pdf
202541065656
2025-07-09

2025-07-18
Pavani P., Devi N.C., Polu A.R., Kumar D., Mishra K., Kareem A.A., Rasheed H.Kh., Jain A.
Eco-Friendly PVA–XG Blend Polymer Electrolyte for Solid-State Sodium Ion Batteries
IN, Anji Reddy Polu, Bvrit Hyderabad, Parveda Pavani, Chekuri Nithisha Devi
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