Page 146 - 《精细化工》2023年第1期
P. 146
·138· 精细化工 FINE CHEMICALS 第 40 卷
Applied Catalysis B: Environmental, 2015, 168/169: 370-376. 2019, 244: 63-75.
[4] SUN S Z, SUN H M, WILLIAMS P T, et al. Recent advances in [21] ZHAO C W, CHEN X P, ZHAO C S. K 2CO 3/Al 2O 3 for capturing
integrated CO 2 capture and utilization: A review[J]. Sustainable CO 2 in flue gas from power plants. Part 4: Abrasion characteristics of
Energy & Fuels, 2021, 5(18): 4546-4559. the K 2CO 3/Al 2O 3 sorbent[J]. Energy & Fuels, 2012, 26(2): 1395-1400.
[5] ARELLANO-TREVIÑO M A, HE Z Y, LIBBY M C, et al. Catalysts [22] GRUENE P, BELOVA A G, YEGULALP T M, et al. Dispersed
and adsorbents for CO 2 capture and conversion with dual function calcium oxide as a reversible and efficient CO 2 sorbent at intermediate
materials: Limitations of Ni-containing DFMs for flue gas temperatures[J]. Industrial & Engineering Chemistry Research, 2011,
applications[J]. Journal of CO 2 Utilization, 2019, 31: 143-151. 7: 4042-4049.
[6] OMODOLOR I S, OTOR H O, ANDONEGUI J A, et al. Dual- [23] ALI A R, REZAEI F, AL-MAMOORI A, et al. Carbon capture and
function materials for CO 2 capture and conversion: A review[J]. utilization update[J]. Energy Technology Generation Conversion
Industrial & Engineering Chemistry Research, 2020, 59(40): 17612- Storage Distribution, 2017, 5(6): 834-849.
17631. [24] HU Y C, LU H Y, LIU W Q, et al. Incorporation of CaO into inert
[7] DUAN Y H, BO Z, DAN C S, et al. CO 2 capture properties of M—C supports for enhanced CO 2 capture: A review[J]. Chemical Engineering
—O—H (M=Li, Na, K) systems: A combined density functional Journal, 2020, 396: 125253.
theory and lattice phonon dynamics study[J]. Journal of Solid State [25] QIN C L, YIN J J, RAN J Y, et al. Effect of support material on the
Chemistry, 2011, 184(2): 304-311. performance of K 2CO 3-based pellets for cyclic CO 2 capture[J]. Applied
[8] QIAO Y Q, WANG J Y, ZHANG Y, et al. Alkali nitrates molten salt Energy, 2014, 136(31): 280-288.
modified commercial MgO for intermediate-temperature CO 2 capture: [26] SUN J, LIANG C, TONG X L, et al. Evaluation of high-temperature
Optimization of the Li/Na/K ratio[J]. Industrial & Engineering Chemistry CO 2 capture performance of cellulose-templated CaO-based pellets[J].
Research, 2017, 6(56): 1509-1517. Fuel, 2019, 239: 1046-1054.
[9] HU Y C, GUO Y F, SUN J, et al. Progress in MgO sorbents for cyclic [27] WANG P, SUN J, GUO Y F, et al. Structurally improved, urea-
CO 2 capture: A comprehensive review[J]. Journal of Materials Chemistry templated, K 2CO 3-based sorbent pellets for CO 2 capture[J]. Chemical
A, 2019, 7(35): 20103-20120. Engineering Journal, 2019, 374: 20-28.
[10] LEE S C, CHAE H J, LEE S J, et al. Development of regenerable [28] SUN J, LIU W Q, HU Y C, et al. Enhanced performance of
MgO-based sorbent promoted with K 2CO 3 for CO 2 capture at low extruded-spheronized carbide slag pellets for high temperature CO 2
temperatures[J]. Environmental Science & Technology, 2008, 42(8): capture[J]. Chemical Engineering Journal, 2016, 285: 293-303.
2736. [29] WANG G D, GUO Y F, YU J, et al. Ni-CaO dual function materials
[11] SHAN S Y, JIA Q M, JIANG L H, et al. Novel Li 4SiO 4-based prepared by different synthetic modes for integrated CO 2 capture and
sorbents from diatomite for high temperature CO 2 capture[J]. conversion[J]. Chemical Engineering Journal, 2022, 428: 132110.
Ceramics International, 2013, 39(5): 5437-5441. [30] CHEN Q J, ZHANG J, PAN B R, et al. Temperature-dependent
[12] HU Y C, LIU W Q, YANG Y D, et al. CO 2 capture by Li 4SiO 4 anti-coking behaviors of highly stable Ni-CaO-ZrO 2 nanocomposite
sorbents and their applications: Current developments and new catalysts for CO 2 reforming of methane[J]. Chemical Engineering
trends[J]. Chemical Engineering Journal, 2019, 359: 604-625. Journal, 2017, 320: 63-73.
[13] ABANADES J C, GRASA G, ALONSO M, et al. Cost structure of a [31] ASHOK J, KATHIRASER Y, ANG M L, et al. Bi-functional
postcombustion CO 2 capture system using CaO[J]. Environmental hydrotalcite-derived NiO-CaO-Al 2O 3 catalysts for steam reforming
Science & Technology, 2007, 41(15): 5523-5527. of biomass and/or tar model compound at low steam-to-carbon
[14] GRASA G S, GARCÍA J A. CO 2 capture capacity of CaO in long conditions[J]. Applied Catalysis B: Environmental, 2015, 172/173:
series of carbonation/calcination cycles[J]. Industrial & Engineering 116-128.
Chemistry Research, 2006, 45(26): 8846-8851. [32] SONG G, DING Y D, ZHU X, et al. Carbon dioxide adsorption
[15] ARMUTLULU A, NAEEM M A, LIU H J, et al. Multishelled CaO characteristics of synthesized MgO with various porous structures
microspheres stabilized by stomic layer deposition of Al 2O 3 for achieved by varying calcination temperature[J]. Colloids and Surfaces
enhanced CO 2 capture performance[J]. Advanced Materials, 2017, A: Physicochemical and Engineering Aspects, 2015, 470: 39-45.
29(41): 1702896. [33] TAKAHASHI R, SATO S, SODESAWA T, et al. High surface-area
[16] NAEEM M A, ARMUTLULU A, IMTIAZ Q, et al. Optimization of silica with controlled pore size prepared from nanocomposite of
the structural characteristics of CaO and its effective stabilization silica and citric acid[J]. The Journal of Physical Chemistry B, 2000,
yield high-capacity CO 2 sorbents[J]. Nature Communications, 2018, 104(51): 12184-12191.
9(1): 1-11. [34] BRODA M, MANOVIC V, ANTHONY E J, et al. Effect of
[17] MEBRAHTU C, ABATE S, PERATHONER S, et al. CO 2 methanation pelletization and addition of steam on the cyclic performance of
over Ni catalysts based on ternary and quaternary mixed oxide: A carbon-templated, CaO-based CO 2 sorbents[J]. Environmental Science
comparison and analysis of the structure-activity relationships[J]. & Technology, 2014, 48(9): 53228.
Catalysis Today, 2018, 304: 181-189. [35] OUYANG P (欧阳平), YAO J H (姚金华), CHEN G X (陈国需),
[18] HE Z Y, LIBBY M C, FARRAUTO R J. Catalysts and adsorbents for et al. Effect of mechanical friction on catalyst in friction catalytic
CO 2 capture and conversion with dual function materials: Limitations reaction[C]//The 4rd National Annual Meeting of Industrial Catalysis
of Ni-containing DFMs for flue gas applications[J]. Journal of CO 2 Technology & Application (第四届全国工业催化技术及应用年会),
Utilization, 2019, 31: 143-151. 2007: 125-127.
[19] JO S B, WOO J H, LEE J H, et al. CO 2 green technologies in CO 2 [36] SUN Z K, SEDGHKERDAR M H, SAAYMAN J, et al. A facile
capture and direct utilization processes: Methanation, reverse water- fabrication of mesoporous core-shell CaO-based pellets with enhanced
gas shift, and dry reforming of methane[J]. Sustainable Energy & reactive stability and resistance to attrition in cyclic CO 2 capture[J].
Fuels, 2020, 4(11): 5543-5549. Journal of Materials Chemistry A, 2014, 2(39): 16577-16588.
[20] SUN H M, WANG J Q, ZHAO J H, et al. Dual functional catalytic [37] DUNSTAN M T, MAUGERI S A, LIU W, et al. In situ studies of
materials of Ni over Ce-modified CaO sorbents for integrated CO 2 materials for high temperature CO 2 capture and storage[J]. Faraday
capture and conversion[J]. Applied Catalysis B: Environmental, Discuss, 2016, 192: 217-240.