| [1] |
Yin W, Gu H, Figueirêdo MB, Xia S, Venderbosch RH, et al. 2021. Stabilization of fast pyrolysis liquids from biomass by catalytic hydrotreatment using Raney nickel "type" catalysts. |
| [2] |
Liu J, Zhao W, Yang SW, Hu B, Xu MX, et al. 2021. Formation mechanism of NOx precursors during the pyrolysis of 2, 5-diketopiperazine based on experimental and theoretical study. |
| [3] |
Sikarwar VS, Zhao M, Clough P, Yao J, Zhong X, et al. 2016. An overview of advances in biomass gasification. |
| [4] |
Li H, Bunrit A, Li N, Wang F. 2020. Heteroatom-participated lignin cleavage to functionalized aromatics. |
| [5] |
Blair MJ, Cabral L, Mabee WE. 2017. Biorefinery strategies: exploring approaches to developing forest-based biorefinery activities in British Columbia and Ontario, Canada. |
| [6] |
Ennaert T, Van Aelst J, Dijkmans J, De Clercq R, Schutyser W, et al. 2016. Potential and challenges of zeolite chemistry in the catalytic conversion of biomass. |
| [7] |
Wu X, Fan X, Xie S, Lin J, Cheng J, et al. 2018. Solar energy-driven lignin-first approach to full utilization of lignocellulosic biomass under mild conditions. |
| [8] |
Yu Z, Wu H, Li Y, Xu Y, Li H, et al. 2020. Advances in heterogeneously catalytic degradation of biomass saccharides with ordered-nanoporous materials. |
| [9] |
Li C, Zhao X, Wang A, Huber GW, Zhang T. 2015. Catalytic transformation of lignin for the production of chemicals and fuels. |
| [10] |
Abu-Omar MM, Barta K, Beckham GT, Luterbacher JS, Ralph J, et al. 2021. Guidelines for performing lignin-first biorefining. |
| [11] |
Isikgor FH, Becer CR. 2015. Lignocellulosic biomass: a sustainable platform for the production of bio-based chemicals and polymers. |
| [12] |
Möller M, Schröder U. 2013. Hydrothermal production of furfural from xylose and xylan as model compounds for hemicelluloses. |
| [13] |
Sankaran R, Markandan K, Khoo KS, Cheng CK, Ashokkumar V, et al. 2021. The expansion of lignocellulose biomass conversion into bioenergy via nanobiotechnology. |
| [14] |
Cui Y, Zhang Y, Cui L, Zhao W, Faizan A. 2023. Microwave heating of silicon carbide and polypropylene particles in a fluidized bed reactor. |
| [15] |
Cui L, Zhang Y, Shi C, Zhao W, Li B. 2024. Describing the microwave heating performances of the main constitutes of biomass. |
| [16] |
Zhang Y, Fu W, Cui L, Maqsood T, Li B. 2023. Experimental microwave-assisted air gasification of biomass for syngas production. |
| [17] |
Ahmad F, Zhang Y, Liu Z, Zhao W, Liu W, et al. 2025. Aromatic enriched oil production via microwave-assisted catalytic co-pyrolysis of baked semen Abutilon seeds and waste expanded polystyrene. |
| [18] |
Saxena RC, Adhikari DK, Goyal HB. 2009. Biomass-based energy fuel through biochemical routes: a review. |
| [19] |
El-Fawal EM, El Naggar AMA, El-Zahhar AA, Alghandi MM, Morshedy AS, et al. 2025. Biofuel production from waste residuals: comprehensive insights into biomass conversion technologies and engineered biochar applications. |
| [20] |
Meng N, Liu W, Jiang R, Zhang Y, Dunn S, et al. 2023. Fundamentals, advances and perspectives of piezocatalysis: a marriage of solid-state physics and catalytic chemistry. |
| [21] |
Liu Z, Luo W, Zhang M, Zhao W, Mostafa E, et al. 2025. Evaluating the potential environmental impact of biomass combustion methods using quantitative universal exergy method. |
| [22] |
Tshikovhi A, Motaung TE. 2023. Technologies and innovations for biomass energy production. |
| [23] |
Yang H, Lee CG, Lee J. 2025. Piezocatalysis-combined advanced oxidation processes for organic pollutant degradation in water system. |
| [24] |
Zheng H, Wang Y, Liu J, wang J, Yan K, et al. 2024. Recent advancements in the use of novel piezoelectric materials for piezocatalytic and piezo-photocatalytic applications. |
| [25] |
Wang W, Li J, Liu H, Ge S. 2021. Advancing versatile ferroelectric materials toward biomedical applications. |
| [26] |
Ye Z, Zheng R, Li S, Wang Q, Zhang R, et al. 2024. A review: recent advances of piezoelectric photocatalysis in the environmental fields. |
| [27] |
Wang K, Han C, Li J, Qiu J, Sunarso J, et al. 2022. The mechanism of piezocatalysis: energy band theory or screening charge effect? |
| [28] |
Bößl F, Tudela I. 2021. Piezocatalysis: Can catalysts really dance? |
| [29] |
Qian W, Yang W, Zhang Y, Bowen CR, Yang Y. 2020. Piezoelectric materials for controlling electro-chemical processes. |
| [30] |
Chen F, Huang H, Guo L, Zhang Y, Ma T. 2019. The role of polarization in photocatalysis. |
| [31] |
Liu J, Qi W, Xu M, Thomas T, Liu S, et al. 2023. Piezocatalytic techniques in environmental remediation. |
| [32] |
Ali A, Chen L, Nasir MS, Wu C, Guo B, et al. 2023. Piezocatalytic removal of water bacteria and organic compounds: a review. |
| [33] |
Jiang Z, Tan X, Huang Y. 2022. Piezoelectric effect enhanced photocatalysis in environmental remediation: State-of-the-art techniques and future scenarios. |
| [34] |
Liang Z, Yan CF, Rtimi S, Bandara J. 2019. Piezoelectric materials for catalytic/photocatalytic removal of pollutants: recent advances and outlook. |
| [35] |
Mamba G, Mafa PJ, Muthuraj V, Mashayekh-Salehi A, Royer S, et al. 2022. Heterogeneous advanced oxidation processes over stoichiometric ABO3 perovskite nanostructures. |
| [36] |
Chen S, Zhu P, Mao L, Wu W, Lin H, et al. 2023. Piezocatalytic medicine: an emerging frontier using piezoelectric materials for biomedical applications. |
| [37] |
Zhang X, Chen Y, Guo R, Zhang Z, Sun Z, et al. 2025. Three birds with one stone: a piezo-photocatalytic system for synergistic environmental remediation through simultaneous ionic liquids degradation, H2 production, and uranium reduction. |
| [38] |
Shen Z, Yang Y, Li Y, Cheng X, Zhang H, et al. 2024. Titanium carbide sealed cadmium sulfide quantum dots on carbon, oxygen-doped boron nitride for enhanced and durable photochemical carbon dioxide reduction. |
| [39] |
Xiao R, Zhao C, Zou Z, Chen Z, Tian L, et al. 2020. In situ fabrication of 1D CdS nanorod/2D Ti3C2 MXene nanosheet Schottky heterojunction toward enhanced photocatalytic hydrogen evolution. |
| [40] |
Tang Z, Tao Y, Wang K, Bao D, Gao Z, et al. 2023. Lattice Mn2+ doped CdSe/CdS quantum dots for high-performance photoelectrochemical hydrogen evolution. |
| [41] |
Xin Y, Wang H, Xue H, Li Q, Li H, et al. 2025. Ti3C2-based MXene anchoring single-atom Co as a long-lasting peroxymonosulfate activator enabling efficient water decontamination: deciphering the critical role of titanium vacancies. |
| [42] |
He K, Li W, Tang L, Chen L, Wang G, et al. 2023. Insight into the design of a Ti3C2 MXene/Ti4O7 composite ceramic membrane boosts the electrocatalytic activity for 1, 4-dioxane electro-oxidation. |
| [43] |
Ray SK, Cho J, Hur J. 2021. A critical review on strategies for improving efficiency of BaTiO3-based photocatalysts for wastewater treatment. |
| [44] |
Güler M, Güler E. 2017. Elastic, mechanical and phonon behavior of wurtzite cadmium sulfide under pressure. |
| [45] |
Lu L, Ding W, Liu J, Yang B. 2020. Flexible PVDF based piezoelectric nanogenerators. |
| [46] |
Jia XT, Xing HW, Cheng XW, Zhang ZH, Wang Q, et al. 2025. Two-dimensional nanostructured Ti3C2Tx MXene for ceramic materials: preparation and applications. |
| [47] |
Zhang W, Feng Q, Hosono E, Asakura D, Miyawaki J, et al. 2020. Tetragonal distortion of a BaTiO3/Bi0.5Na0.5TiO3 nanocomposite responsible for anomalous piezoelectric and ferroelectric behaviors. |
| [48] |
Thapa S. 2016. Defects and ferromagnetism in transition metal doped zinc oxide. Master's thesis. Bowling Green State University, US. http://rave.ohiolink.edu/etdc/view acc_num=bgsu1467319340 |
| [49] |
Wu T, Jin H, Dong S, Xuan W, Xu H, et al. 2020. A flexible film bulk acoustic resonator based on β-phase polyvinylidene fluoride polymer. |
| [50] |
Li H, Wu Q, Zhou T, Wang Y, Qiu Y, et al. 2023. Elastic, piezoelectric, and electronic properties of K1–xMxNbO3 (M = Li, Na): a first-principles study. |
| [51] |
Bößl F, Menzel VC, Jeronimo K, Arora A, Zhang Y, et al. 2023. Importance of energy band theory and screening charge effect in piezo-electrocatalytical processes. |
| [52] |
Qi W, Fu Y, Liu E, Cheng Z, Sun Y, et al. 2024. Advancements and opportunities in piezo-(photo)catalytic technology for synthesizing value-added chemicals. |
| [53] |
Tian W, Qiu J, Li N, Chen D, Xu Q, et al. 2021. Efficient piezocatalytic removal of BPA and Cr(VI) with SnS2/CNFs membrane by harvesting vibration energy. |
| [54] |
Shi J, Zeng W, Dai Z, Wang L, Wang Q, et al. 2021. Piezocatalytic foam for highly efficient degradation of aqueous organics. |
| [55] |
Wei Y, Zhang Y, Geng W, Su H, Long M. 2019. Efficient bifunctional piezocatalysis of Au/BiVO4 for simultaneous removal of 4-chlorophenol and Cr(VI) in water. |
| [56] |
Wang P, Li X, Fan S, Chen X, Qin M, et al. 2020. Impact of oxygen vacancy occupancy on piezo-catalytic activity of BaTiO3 nanobelt. |
| [57] |
Wang Y, Wen X, Jia Y, Huang M, Wang F, et al. 2020. Piezo-catalysis for nondestructive tooth whitening. |
| [58] |
Wu J, Xu Q, Lin E, Yuan B, Qin N, et al. 2018. Insights into the role of ferroelectric polarization in piezocatalysis of nanocrystalline BaTiO3. |
| [59] |
Cai Y, Zhang Y, Lv Z, Zhang S, Gao F, et al. 2022. Highly efficient uranium extraction by a piezo catalytic reduction-oxidation process. |
| [60] |
Chen P, Ni J, Liang Y, Yang B, Jia F, et al. 2021. Piezo-photocatalytic reduction of Au(I) by defect-rich MoS2 nanoflowers for efficient gold recovery from a thiosulfate solution. |
| [61] |
Feng J, Zhang T, Sun J, Zhu J, Yan W, et al. 2022. Improvement of sewage sludge dewatering by piezoelectric effect driven directly with pressure from pressure filtration: towards understanding piezo-dewatering mechanism. |
| [62] |
Demirbas A. 2009. Agricultural based activated carbons for the removal of dyes from aqueous solutions: a review. |
| [63] |
Wardman P. 1989. Reduction potentials of one-electron couples involving free radicals in aqueous solution. |
| [64] |
Bard AJ, Parsons R, Jordan J. 1985. Standard potentials in aqueous solution, 1st Edition. Boca Raton: Routledge. doi: 10.1201/9780203738764 |
| [65] |
Liu D, Jin C, Shan F, He J, Wang F. 2020. Synthesizing BaTiO3 nanostructures to explore morphological influence, kinetics, and mechanism of piezocatalytic dye degradation. |
| [66] |
He J, Dong C, Chen X, Cai H, Chen X, et al. 2023. Review of piezocatalysis and piezo-assisted photocatalysis in environmental engineering. |
| [67] |
Meng F, Ma W, Wang Y, Zhu Z, Chen Z, et al. 2020. A tribo-positive Fe@MoS2 piezocatalyst for the durable degradation of tetracycline: degradation mechanism and toxicity assessment. |
| [68] |
Hu C, Huang H, Chen F, Zhang Y, Yu H, et al. 2020. Coupling piezocatalysis and photocatalysis in Bi4NbO8X (X = Cl, Br) polar single crystals. |
| [69] |
Liao X, Xie H, Liao B, Hou S, Yu Y, et al. 2022. Ball milling induced strong polarization electric fields in Cu3B2O6 crystals for high efficiency piezocatalysis. |
| [70] |
Zhang Y, An Q, Zhang S, Ma Z, Hu X, et al. 2022. A healing promoting wound dressing with tailor-made antibacterial potency employing piezocatalytic processes in multi-functional nanocomposites. |
| [71] |
Su R, Hsain HA, Wu M, Zhang D, Hu X, et al. 2019. Nano-ferroelectric for high efficiency overall water splitting under ultrasonic vibration. |
| [72] |
Su R, Wang Z, Zhu L, Pan Y, Zhang D, et al. 2021. Strain-engineered nano-ferroelectrics for high-efficiency piezocatalytic overall water splitting. |
| [73] |
Ranjan A, Hsiao KY, Lin CY, Tseng YH, Lu MY. 2022. Enhanced piezocatalytic activity in Bi1/2Na1/2TiO3 for water splitting by oxygen vacancy engineering. |
| [74] |
Hong KS, Xu H, Konishi H, Li X. 2010. Direct water splitting through vibrating piezoelectric microfibers in water. |
| [75] |
Li Y, Li L, Liu F, Wang B, Gao F, et al. 2022. Robust route to H2O2 and H2 via intermediate water splitting enabled by capitalizing on minimum vanadium-doped piezocatalysts. |
| [76] |
He J, Gao F, Wang H, Liu F, Lin J, et al. 2022. C-Doped KNbO3 single crystals for enhanced piezocatalytic intermediate water splitting. |
| [77] |
Zhang Y, Khanbareh H, Dunn S, Bowen CR, Gong H, et al. 2022. High efficiency water splitting using ultrasound coupled to a BaTiO3 nanofluid. |
| [78] |
Thuy Phuong PT, Zhang Y, Gathercole N, Khanbareh H, Hoang Duy NP, et al. 2020. Demonstration of enhanced piezo-catalysis for hydrogen generation and water treatment at the ferroelectric curie temperature. |
| [79] |
Das S, Pérez-Ramírez J, Gong J, Dewangan N, Hidajat K, et al. 2020. Core–shell structured catalysts for thermocatalytic, photocatalytic, and electrocatalytic conversion of CO2. |
| [80] |
Nitopi S, Bertheussen E, Scott SB, Liu X, Engstfeld AK, et al. 2019. Progress and perspectives of electrochemical CO2 reduction on copper in aqueous electrolyte. |
| [81] |
Phuong PTT, Vo DN, Duy NPH, Pearce H, Tsikriteas ZM, et al. 2022. Piezoelectric catalysis for efficient reduction of CO2 using lead-free ferroelectric particulates. |
| [82] |
Ren Z, Chen F, Zhao Q, Zhao G, Li H, et al. 2023. Efficient CO2 reduction to reveal the piezocatalytic mechanism: from displacement current to active sites. |
| [83] |
Zhang Y, Thuy Phuong PT, Hoang Duy NP, Roake E, Khanbareh H, et al. 2021. Polarisation tuneable piezo-catalytic activity of Nb-doped PZT with low Curie temperature for efficient CO2 reduction and H2 generation. |
| [84] |
Zhou Y, Wang H, Liu X, Qiao S, Shao D, et al. 2021. Direct piezocatalytic conversion of methane into alcohols over hydroxyapatite. |
| [85] |
Chen L, Zhang W, Wang J, Li X, Li Y, et al. 2023. High piezo/photocatalytic efficiency of Ag/Bi5O7I nanocomposite using mechanical and solar energy for N2 fixation and methyl orange degradation. |
| [86] |
Dai X, Chen L, Li Z, Li X, Wang J, et al. 2021. CuS/KTa0.75Nb0.25O3 nanocomposite utilizing solar and mechanical energy for catalytic N2 fixation. |
| [87] |
Chen L, Dai X, Li X, Wang J, Chen H, et al. 2021. A novel Bi2S3/KTa0.75Nb0.25O3nanocomposite with high efficiency for photocatalytic and piezocatalytic N2 fixation. |
| [88] |
He J, Wang X, Feng P, Zhou Y, Wang K, et al. 2024. Isostructural phase transition-induced piezoelectricity in all-inorganic perovskite CsPbBr3 for catalytic CO2 reduction. |
| [89] |
Zhou X, Yan F, Wu S, Shen B, Zeng H, et al. 2020. Remarkable piezophoto coupling catalysis behavior of BiOX/BaTiO3 (X = Cl, Br, Cl0.166 Br0.834) piezoelectric composites. |
| [90] |
Fu B, Li J, Jiang H, He X, Ma Y, et al. 2022. Modulation of electric dipoles inside electrospun BaTiO3@TiO2 core-shell nanofibers for enhanced piezo-photocatalytic degradation of organic pollutants. |
| [91] |
Xie Z, Tang X, Shi J, Wang Y, Yuan G, et al. 2022. Excellent piezo-photocatalytic performance of Bi4Ti3O12 nanoplates synthesized by molten-salt method. |
| [92] |
Lan S, Zeng X, Ahmad Rather R, Lo IMC. 2019. Enhanced trimethoxypyrimidine degradation by piezophotocatalysis of BaTiO3/Ag3PO4 using mechanical vibration and visible light simultaneously. |
| [93] |
Ren J, Li H, Wang X, Chen Q, Liu Q, et al. 2025. Defect engineering-driven enhancement of piezocatalysis in (K, Na)NbO3 lead-free piezocatalysts. |
| [94] |
Zhao Y, Zhang X, Zhang J, Zhao J, Ren W, et al. 2025. Efficient piezoelectric catalytic degradation of organic pollutants based on defect engineering of heterovalent Al3+ doped (Ba0.85Ca0.15)(Zr0.1Ti0.9)O3 solid solutions. |
| [95] |
Park G, Oh SC, Kang SH, Park JW. 2025. Enhanced degradation of organic contaminants using a PVDF/AC-NaCl piezocatalyst: effect of geometric design in fluid flow environments. |
| [96] |
Ran M, Du B, Liu W, Liang Z, Liang L, et al. 2024. Dynamic defects boost in-situ H2O2piezocatalysis for water cleanup. |
| [97] |
Lu X, Zhang R, Liu Y, Zhou Z, Xia Y, et al. 2024. Oxygen vacancies and lattice distortion synergistically enhanced piezocatalysis of CaZn2(BO3)2 for nonantibiotic pharmaceutical degradation. |
| [98] |
Yuan J, Yang G, Zhou X, Huang J, Chen Y. 2025. Functional carbon materials from waste plastics: synthesis and applications. |