entity:catalyst

Zn-doped NiFeOxHy OER catalyst

Zn-doped NiFeOxHy OER catalyst

인산염 기반 화학 욕 증착(CBD)으로 Ni 포일 위에 제조한 후 전기화학적 활성화(150 CV 사이클, 1.0 M KOH)를 거친 비정질 Zn;NiFeOxHy 알칼리 OER 촉매; 순소비 없이 활성/초기화 상태를 순환 → catalyst. 참조: Lim et al., ACS Catal. (2019).

조성 및 구조

OER 성능 (1 M KOH)

지표Zn;NiFeOxHye-NiFeOxHy (비교군)출처
η @ 10 mA cm⁻²250 mV294 mVFig. 4b
Tafel 기울기28.3 mV dec⁻¹38.4 mV dec⁻¹Fig. 4d
TOF_Fe @ 1.53 V vs RHE0.53 s⁻¹0.22 s⁻¹§3.3

패러데이 효율 ~98% (참조 Lim et al., ACS Catal. (2019), Fig. S₁₀). 모든 값은 Lim et al., ACS Catal. (2019), Fig. 4b, 4d, §3.3 참조.

연관 항목

로컬 그래프 (5 연결)

드래그·휠로 탐색 · 노드 호버 → 관계 · 클릭 → 페이지

나가는 연결 (5)

relates_to
Lewis-acid inductive effect on OER
Zn2+ Lewis acidity is the central mechanistic claim for improved OER in Zn;NiFeOxHy
produces
OER overpotential in alkaline electrolyte (1 M KOH)
eta=250 mV @10 mA/cm2 in 1 M KOH, Fig. 4b
part_of
NiFe alkaline OER
member of umbrella NiFe-alkaline-OER

역링크 (4)

relates_to
Electrochemically activated NiFeOxHy (arc-melted Ni70Fe30)
same host material and similar eta (250 mV), different preparation route and slightly different Tafel slope (30 vs 28.3 mV dec-1)
relates_to
Binder-free amorphous LDH-type CoMnPOxHy OER catalyst
both use residual-anion or Lewis-acid stabilization of high-valent metal states; CoMn uses retained phosphate (anion ligand), Zn-NiFe uses Zn2+ Lewis acid