3 Catalysts via Atomic Layer Deposition
101
68. Yan H, Zhao X, Guo N et al (2018) Atomic engineering of high-density isolated Co atoms on
graphene with proximal-atom controlled reaction selectivity. Nat Commun 9:3197
69. Li Z, Schweitzer N, League A et al (2016) Sintering-resistant single-site nickel catalyst
supported by metal-organic framework. J Am Chem Soc 138:1977–1982
70. Cao Y, Chen S, Luo Q et al (2017) Atomic-level insight into optimizing the hydrogen evolution
pathway over a Co 1 -N 4 single-site photocatalyst. Angew Chem Int Ed 56:12191–12196
71. Weber MJ, Mackus AJM, Verheijen MA et al (2012) Supported core/shell bimetallic
nanoparticles synthesis by atomic layer deposition. Chem Mater 24:2973–2977
72. Weber MJ, Verheijen MA, Bol AA et al (2015) Sub-nanometer dimensions control of
core/shell nanoparticles prepared by atomic layer deposition. Nanotechnology 26:094002
73. Lu J, Low K, Lei Y et al (2014) Toward atomically-precise synthesis of supported bimetallic
nanoparticles using atomic layer deposition. Nat Commun 5:3264
74. Cao K, Zhu Q, Shan B et al (2015) Controlled synthesis of Pd/Pt core shell nanoparticles
using area-selective atomic layer deposition. Sci Rep 5:8470
75. Wang H, Wang C, Yan H et al (2015) Precisely-controlled synthesis of Au@Pd core-shell
bimetallic catalyst via atomic layer deposition for selective oxidation of benzyl alcohol. J
Catal 324:59–68
76. Christensen ST, Feng H, Libera JL et al (2010) Supported Ru-Pt bimetallic nanoparticle
catalysts prepared by atomic layer deposition. Nano Lett 10:3047–3051
77. Cao K, Gong M, Yang JF, Cai JM, Chu SQ, Chen ZP, Shan B, Chen R (2019) Nickel catalyst with atomically-thin meshed cobalt coating for improved durability in dry reforming of
methane. J Catal 373:351–360
78. Vandegehuchte BD, Thybaut JW, Detavernier C et al (2014) A single-event microkinetic
assessment of n-alkane hydroconversion on ultrastable Y zeolites after atomic layer deposition
of alumina. J Catal 311:433–446
79. Ge H, Zhang B, Gu X et al (2016) A tandem catalyst with multiple metal oxide interfaces
produced by atomic layer deposition. Angew Chem Int Ed 55:7081–7085
80. Wang M, Gao Z, Zhang B et al (2016) Ultrathin coating of confined Pt nanocatalysts by atomic
layer deposition for enhanced catalytic performance in hydrogenation reactions. Chem Eur J
22:8438–8443
81. O’Neill BJ, Jackson DHK, Crisci AJ et al (2013) Stabilization of copper catalysts for liquidphase reactions by atomic layer deposition. Angew Chem Int Ed 52:13808–13812
82. Feng H, Lu JL, Stair PC et al (2011) Alumina over-coating on Pd nanoparticle catalysts by
atomic layer deposition: enhanced stability and reactivity. Catal Lett 141:512–517
83. Lu J, Fu B, Kung MC et al (2012) Coking- and sintering-resistant palladium catalysts achieved
through atomic layer deposition. Science 335:1205–1208
84. Zhang H, Gu X-K, Canlas C et al (2014) Atomic layer deposition overcoating: tuning catalyst
selectivity for biomass conversion. Angew Chem Int Ed 53:12132–12136
85. Yi H, Du H, Hu Y et al (2015) Precisely controlled porous alumina overcoating on Pd catalyst
by atomic layer deposition: enhanced selectivity and durability in hydrogenation of 1,3Butadiene. ACS Catalysis 5:2735–2739
86. Zhang H, Canlas C, Kropf AJ et al (2015) Enhancing the stability of copper chromite catalysts
for the selective hydrogenation of furfural with ALD overcoating (II) - Comparison between
TiO 2 and Al 2 O 3 overcoatings. J Catal 326:172–181
87. Alba-Rubio AC, O’Neill BJ, Shi F et al (2014) Pore structure and bifunctional catalyst activity
of overlayers applied by atomic layer deposition on copper nanoparticles. ACS Catal 4:1554–
1557
88. O’Neill BJ, Sener C, Jackson DHK et al (2014) Control of thickness and chemical properties of
atomic layer deposition overcoats for stabilizing Cu/γ-Al 2 O 3 catalysts. Chem Sustain Chem
7:3247–3251
89. Canlas CP, Lu JL, Ray NA et al (2012) Shape-selective sieving layers on an oxide catalyst
surface. J Nat Gas Chem 4:1030
90. Wang CL, Lu JL (2016) Sub-nanometer-thick Al 2 O 3 overcoat remarkably enhancing thermal
stability of supported gold catalysts. Chin J Chem Phys 29:571
101
68. Yan H, Zhao X, Guo N et al (2018) Atomic engineering of high-density isolated Co atoms on
graphene with proximal-atom controlled reaction selectivity. Nat Commun 9:3197
69. Li Z, Schweitzer N, League A et al (2016) Sintering-resistant single-site nickel catalyst
supported by metal-organic framework. J Am Chem Soc 138:1977–1982
70. Cao Y, Chen S, Luo Q et al (2017) Atomic-level insight into optimizing the hydrogen evolution
pathway over a Co 1 -N 4 single-site photocatalyst. Angew Chem Int Ed 56:12191–12196
71. Weber MJ, Mackus AJM, Verheijen MA et al (2012) Supported core/shell bimetallic
nanoparticles synthesis by atomic layer deposition. Chem Mater 24:2973–2977
72. Weber MJ, Verheijen MA, Bol AA et al (2015) Sub-nanometer dimensions control of
core/shell nanoparticles prepared by atomic layer deposition. Nanotechnology 26:094002
73. Lu J, Low K, Lei Y et al (2014) Toward atomically-precise synthesis of supported bimetallic
nanoparticles using atomic layer deposition. Nat Commun 5:3264
74. Cao K, Zhu Q, Shan B et al (2015) Controlled synthesis of Pd/Pt core shell nanoparticles
using area-selective atomic layer deposition. Sci Rep 5:8470
75. Wang H, Wang C, Yan H et al (2015) Precisely-controlled synthesis of Au@Pd core-shell
bimetallic catalyst via atomic layer deposition for selective oxidation of benzyl alcohol. J
Catal 324:59–68
76. Christensen ST, Feng H, Libera JL et al (2010) Supported Ru-Pt bimetallic nanoparticle
catalysts prepared by atomic layer deposition. Nano Lett 10:3047–3051
77. Cao K, Gong M, Yang JF, Cai JM, Chu SQ, Chen ZP, Shan B, Chen R (2019) Nickel catalyst with atomically-thin meshed cobalt coating for improved durability in dry reforming of
methane. J Catal 373:351–360
78. Vandegehuchte BD, Thybaut JW, Detavernier C et al (2014) A single-event microkinetic
assessment of n-alkane hydroconversion on ultrastable Y zeolites after atomic layer deposition
of alumina. J Catal 311:433–446
79. Ge H, Zhang B, Gu X et al (2016) A tandem catalyst with multiple metal oxide interfaces
produced by atomic layer deposition. Angew Chem Int Ed 55:7081–7085
80. Wang M, Gao Z, Zhang B et al (2016) Ultrathin coating of confined Pt nanocatalysts by atomic
layer deposition for enhanced catalytic performance in hydrogenation reactions. Chem Eur J
22:8438–8443
81. O’Neill BJ, Jackson DHK, Crisci AJ et al (2013) Stabilization of copper catalysts for liquidphase reactions by atomic layer deposition. Angew Chem Int Ed 52:13808–13812
82. Feng H, Lu JL, Stair PC et al (2011) Alumina over-coating on Pd nanoparticle catalysts by
atomic layer deposition: enhanced stability and reactivity. Catal Lett 141:512–517
83. Lu J, Fu B, Kung MC et al (2012) Coking- and sintering-resistant palladium catalysts achieved
through atomic layer deposition. Science 335:1205–1208
84. Zhang H, Gu X-K, Canlas C et al (2014) Atomic layer deposition overcoating: tuning catalyst
selectivity for biomass conversion. Angew Chem Int Ed 53:12132–12136
85. Yi H, Du H, Hu Y et al (2015) Precisely controlled porous alumina overcoating on Pd catalyst
by atomic layer deposition: enhanced selectivity and durability in hydrogenation of 1,3Butadiene. ACS Catalysis 5:2735–2739
86. Zhang H, Canlas C, Kropf AJ et al (2015) Enhancing the stability of copper chromite catalysts
for the selective hydrogenation of furfural with ALD overcoating (II) - Comparison between
TiO 2 and Al 2 O 3 overcoatings. J Catal 326:172–181
87. Alba-Rubio AC, O’Neill BJ, Shi F et al (2014) Pore structure and bifunctional catalyst activity
of overlayers applied by atomic layer deposition on copper nanoparticles. ACS Catal 4:1554–
1557
88. O’Neill BJ, Sener C, Jackson DHK et al (2014) Control of thickness and chemical properties of
atomic layer deposition overcoats for stabilizing Cu/γ-Al 2 O 3 catalysts. Chem Sustain Chem
7:3247–3251
89. Canlas CP, Lu JL, Ray NA et al (2012) Shape-selective sieving layers on an oxide catalyst
surface. J Nat Gas Chem 4:1030
90. Wang CL, Lu JL (2016) Sub-nanometer-thick Al 2 O 3 overcoat remarkably enhancing thermal
stability of supported gold catalysts. Chin J Chem Phys 29:571
